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Verified CAS / Academic Author100 Decoded Studies

Prof. LI Li

School of Chemical Engineering and Technology, Tianjin University

Co-Affiliations:Tianjin University

Research Publications & English Decoded Briefs

Showing 100 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4500-8

Dual-Site Adsorption over Phosphorus-Doped Copper Oxide for Efficient CO2 Electroreduction to Ethylene

Electroreduction of CO2 to ethylene offers a promising route for renewable electricity storage, yet achieving high ethylene selectivity at industrial current densities remains challenging due to the large energy barrier for C–C coupling. Here, we report a “MOF-assisted in situ doping” strategy to introduce the oxophilic nonmetal phosphorus (P) into the copper oxide (CuO) lattice, constructing a localized Cu–P dual-site adsorption configuration for the key *OCCHO intermediate. The optimized catalyst delivers an impressive Faradaic efficiency of 64.6% for ethylene with a partial current density of 646 mA cm-2. Comprehensive structural characterizations demonstrate that P mainly occupies Cu sites, generating abundant lattice defects and oxygen vacancies. In situ synchrotron infrared spectroscopy and theoretical calculations reveal that P doping modulates the electronic structure of Cu, optimizes the binding energies of *CO and *CHO, and stabilizes *OCCHO via P–O/Cu–C dual-site adsorption, thereby significantly lowering the asymmetric C-C coupling energy barrier to 0.74 eV. This work highlights a dual-site microenvironment regulation strategy for CO2-to-ethylene electroreduction.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4304-5

An Ionoelastomer-Based Bioinspired Wearable Electronics with Tele-Perception and Tactile Sensation for Machine Learning-Assisted Rehabilitation Management

Comprehensive assessment of rehabilitation efficiency is essential for designing appropriate training programs for better musculoskeletal functional recovery. Existing contact-receptor-dependent rehabilitation assessment systems mostly focus on assessing the restoration of muscle function by evaluating grip strength or joint flexion angle; however, parameters reflecting neuromuscular synergistic function are always overlooked. Herein, we develop an ionoelastomer-based soft artificial electroreceptor (SAER) that integrates tele-perception and tactile sensation to track the rehabilitation process, collecting signals related to approaching speed and grip strength sequentially. The SAER uses polyurethane ionoelastomer incorporated with quasi-solid conductive salt as the electric field receptor, and is integrated on a rehabilitation-training ball after assembly to establish an untethered detection device; this enables the remote capture of hand approaching parameter within a 9 cm range, followed by the quantification of grip strength when contacting and grasping. Furthermore, a data-driven assessment system is established by integrating machine learning, which accurately classifies rehabilitation efficiency into six levels; it supports for rehabilitation evaluation and training programs adjustment. Overall, the SAER-based rehabilitation management system establishes a paradigm that synergistically evaluating parameters corresponding to neuromuscular functional restoration and holds strong potential for home-based active rehabilitation for minimizing dependence on frequent clinical supervision.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4435-9

Design Strategies and Research Advances in 3D-Printed Organic Room-Temperature Phosphorescent Materials

Organic room-temperature phosphorescent (RTP) materials exhibit large Stokes shifts, high signal-to-noise ratios, and long emission lifetimes, positioning them as promising candidates for advanced anti-counterfeiting, bioimaging, sensing, and display technologies. Despite significant progress in molecular design—including radical-based systems, crystal engineering, host-guest doping, polymer matrix confinement, and supramolecular assembly—the integration of these materials with 3D printing remains in its infancy. This review critically examines the design strategies and research advances in 3D-printed organic RTP materials, focusing on the fundamental photophysical processes of intersystem crossing and suppression of non-radiative transitions. We analyze how printing parameters, matrix rheology, and layer-by-layer deposition influence phosphorescence quantum yields and lifetimes. Key challenges such as oxygen quenching, thermal degradation during extrusion, and poor interlayer adhesion are discussed with quantitative benchmarks. The review highlights that current 3D-printed RTP systems achieve lifetimes up to 1.2 s and quantum yields of 12% under ambient conditions, but scalability beyond 100 cm² remains limited by nozzle clogging and slow curing kinetics. By mapping material formulation to printability, we identify operational windows for extrusion-based and vat photopolymerization techniques. This work provides a roadmap for engineers to transition RTP materials from laboratory-scale demonstrations to industrial fabrication of complex 3D architectures with persistent luminescence.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4279-0

Inkjet Printing Organic Light-Emitting Diodes

Inkjet printing has emerged as a viable additive manufacturing route for organic light-emitting diodes (OLEDs), offering drop-on-demand patterning, high material utilization, and compatibility with large-area flexible substrates. This review critically examines the formulation science, printhead physics, and drying kinetics that govern the quality of inkjet-printed organic layers. We analyze the rheological window required for stable jetting, typically 1–20 mPa·s viscosity and 25–45 mN/m surface tension, and the dimensionless Ohnesorge number (0.1 < Z < 1) that defines satellite-free droplet formation. The coffee-ring effect, driven by capillary flow and solvent evaporation gradients, remains the dominant failure mode for pixel non-uniformity; binary solvent systems and substrate temperature control (40–60 °C) mitigate this. We survey recent progress in printed hole-transport, emissive, and electron-transport layers, with particular attention to cross-linkable hole-transport materials that resist interlayer dissolution. Device performance metrics from printed OLEDs now reach external quantum efficiencies of 15–20% for fluorescent emitters and >25% for phosphorescent systems, with operating lifetimes (T95) exceeding 1,000 hours at 1,000 cd/m². We identify remaining bottlenecks: nozzle clogging from aggregated nanoparticles, film thickness variation across large panels, and the absence of standardized ink formulations. The review concludes with a roadmap for industrial adoption, emphasizing in-line metrology and closed-loop process control as prerequisites for yield parity with vacuum-deposited OLEDs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4439-4

Multi-crosslinking and Topological Entanglement Enable Silk Fibroin Hydrogels with Sustained Mechanical Softness for Neural Regeneration

Silk fibroin (SF) hydrogels are promising for neural regeneration but suffer from progressive stiffening due to excessive β-sheet assembly, limiting their use in traumatic brain injury (TBI) repair. This study introduces a dopamine (DA)-mediated synergistic topological entanglement strategy to construct an SF-DA/gelatin-DA composite hydrogel (SG). The system integrates covalent cross-linking, net cationic electrostatic repulsion, hydrogen bonding, and π-π stacking to regulate SF assembly dynamics at the molecular level. The resulting SG hydrogel maintains stable mechanical softness over extended periods, with a storage modulus of approximately 1.2 kPa after 28 days, compared to a 5-fold increase in pure SF hydrogels. The sustained softness promotes neural stem cell (NSC) proliferation and differentiation, with a 2.5-fold increase in βIII-tubulin expression and a 1.8-fold increase in GFAP expression after 14 days. In a rat TBI model, SG hydrogel implantation reduced glial scar formation by 40% and improved neurological function scores by 30% at 8 weeks. The hydrogel degrades at a rate of 12% per week, matching tissue regeneration. This multi-crosslinking approach offers a clinically translatable strategy for neural tissue engineering, addressing the critical bottleneck of mechanical instability in SF-based biomaterials.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4472-0

Thumb-Sized Liquid Metal System for Robust Dynamic Electrocardiography Monitoring Against Motion Artifacts

Dynamic electrocardiography (ECG) monitoring during physical activity remains compromised by motion artifacts that corrupt signal fidelity, particularly with conventional gel electrodes whose impedance rises sharply under deformation. This work presents a thumb-sized liquid metal system integrating gallium-based epidermal electrodes with a self-adhesive elastomeric matrix to sustain robust ECG acquisition against motion. The electrodes exploit the fluidic compliance of eutectic gallium–indium to maintain continuous skin contact, while the adhesive formulation ensures stable interfacial coupling without additional fixation. The system achieves low motion artifact levels, preserving waveform morphology and R-peak detectability during ambulation. The compact form factor enables unobtrusive wearability, and the materials architecture addresses the trade-off between adhesion and conformability that limits existing dry electrodes. The study establishes a materials and device pathway for clinical-grade dynamic ECG in ambulatory and point-of-care settings, with implications for continuous cardiac monitoring where patient movement is unavoidable.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4433-5

Designer Entropy Enables Negative and Zero Thermal Expansion beyond 1000 K

Negative thermal expansion (NTE) and zero thermal expansion (ZTE) materials are technologically relevant for precision engineering, yet their practical deployment is constrained by narrow operating temperature windows. This study introduces an entropy-designing strategy to regulate the thermal expansion behavior in the AⅠBⅡCⅢMo3O12 system, specifically K0.4(Mg0.25Mn0.25Co0.25Ni0.25)0.4Sc1.6Mo3O12 (CE0.4MO) and related CExMO compositions (x = 0.4, 0.6, 0.8, 1.0). By tuning configurational entropy, the operating temperature windows for both NTE and ZTE are significantly broadened, with the ZTE region shifting to higher temperatures. Among single-phase compositions, CE0.4MO exhibits the lowest configurational entropy and demonstrates NTE from 100 to 830 K and ZTE up to 1100 K, surpassing most reported ZTE materials. Systematic analyses of structural evolution, lattice dynamics, and electronic structure reveal that reduced configurational entropy suppresses structural evolution, directly correlating with decreased structural flexibility. Higher atomic displacement parameters (ADPs) of oxygen in CE1.0MO provide experimental evidence for enhanced flexibility. Raman spectroscopy shows that the full width at half maximum (FWHM) of peaks in the 750–900 cm-1 range positively correlates with configurational entropy, indicating reduced lattice disorder, while modes within 750–1050 cm-1 blue-shift as entropy decreases, confirming lattice stiffening. Electron localization function (ELF) and charge density analyses indicate that Mg/Mn/Co/Ni/Sc–O bonds are ionic, with ionicity weakening as configurational entropy decreases, thereby enhancing constraints on atomic vibrations and reducing structural flexibility. This work establishes a theoretical foundation for designing thermal expansion materials with wide operating temperature ranges.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4479-8

In-Memory and In-Sensor Neuromorphic Computing with 2D Ferroelectrics

The von Neumann architecture is increasingly constrained by energy consumption and data-transfer efficiency as artificial intelligence and data-intensive applications expand. Neuromorphic computing, inspired by the human brain's information-processing mechanisms, offers an alternative paradigm. Two-dimensional (2D) ferroelectric materials are promising candidates due to their intrinsic non-volatility, atomic-scale thickness, ultra-low power consumption, excellent fatigue endurance, and dangling-bond-free surfaces. This review examines recent advances in 2D ferroelectric materials and associated device architectures for neuromorphic applications. It first introduces ferroelectric mechanisms and representative 2D ferroelectrics, then surveys key device architectures including ferroelectric tunnel junctions, diodes, transistors, and photovoltaic devices. Their applications in in-memory computing and in-sensor neuromorphic systems are discussed, with emphasis on artificial neural networks, spiking neural networks, reservoir computing, and neuromorphic perception for efficient information processing and intelligent sensing. The unique properties of 2D ferroelectrics enable integrated sensing, memory, and computing functionalities, demonstrating potential for future neuromorphic and brain-inspired intelligent systems.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4505-9

Ce-induced dynamic electron buffering to regulate controllable surface reconstruction of Co for alkaline oxygen evolution reaction

Transition metal hydroxides are promising oxygen evolution reaction (OER) catalysts for alkaline water electrolysis. This study reports Ce-doped Co(OH)2 electrocatalysts synthesized via one-step electrodeposition, where the Ce3+/Ce4+ ratio is precisely controlled by deposition temperature. The optimized Ce-Co(OH)2 catalyst, obtained at 40°C, exhibits an overpotential of 236 mV at 10 mA cm-2 and maintains stability for 200 h. In an anion-exchange membrane water electrolyzer (AEMWE), the Ce-Co(OH)2 anode achieves a cell voltage of 2.04 V at 1 A cm-2 and operates for over 500 h at 500 mA cm-2. Mechanistic analysis reveals that Ce3+/Ce4+ dynamic electron buffering regulates surface reconstruction: during OER, electron transfer direction reverses (Ce → O → Co), with Ce donating electrons to Co sites to prevent over-oxidation and structural collapse. This work establishes a versatile strategy for balancing surface reconstruction and structural stability in Co-based OER catalysts, providing a foundation for designing high-performance, durable alkaline water oxidation electrocatalysts.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4343-7

Large intrinsic piezoelectricity in intramolecular modified relaxor ferroelectric polymers near the morphotropic phase boundary

Piezoelectric materials interconvert mechanical and electrical energy, but piezoceramics are brittle while PVDF-based ferroelectric polymers exhibit low piezoelectric coefficients (d33 ≈ -30 pC N-1). Chemical modification via morphotropic phase boundary (MPB) engineering has raised d33 in P(VDF-TrFE) to -63.5 pC N-1, and to -69 pC N-1 with stretching, but intrinsic piezoelectricity in relaxor terpolymers remains limited. Here, relaxor ferroelectric P(VDF-TrFE-CFE) with varying C=C double bond (DB) content is synthesized via dehydrochlorination. Structural and electrical characterization reveals that increasing DB content stabilizes long-range ferroelectric order while suppressing short-range relaxor characteristics, forming a trans/helix phase boundary. At a critical DB content of 2.0 mol%, a markedly enhanced intrinsic d33 of -129.0 pC N-1 is achieved, outperforming previous MPB approaches. This finding addresses the fundamental bottleneck of low piezoelectric response in flexible ferroelectric polymers and provides a viable route for high-performance wearable electromechanical devices.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4371-6

Crumpled and Multi-Scale Porous Fe−N−C Catalyst with Enhanced Site Accessibility and Mass Transport in Oxygen Reduction

The sluggish kinetics of the oxygen reduction reaction (ORR) necessitates platinum-based catalysts, but their high cost and scarcity drive the search for platinum-group metal-free (PGM-free) alternatives. Fe−N−C catalysts with atomically dispersed Fe−N4 sites are promising, yet their practical performance is limited by buried active sites and poor mass transport. Here, a crumpled, multi-scale porous Fe−N−C catalyst (Fe−N−PCG) is synthesized via spray pyrolysis coupled with high-temperature metal etching. The crumpled morphology, formed by capillary compression during rapid solvent evaporation, and in-plane mesopores from Fe nanoparticle etching, synergistically enhance site accessibility and mass transport. Fe−N−PCG achieves a site density (SD) of 2.74×10^19 sites g−1 and Fe utilization (UFe) of 51.7%. As a gas diffusion electrode, it delivers a mass transport overpotential (ηmt) of 67 mV at 800 mA cm−2. In zinc-air batteries, Fe−N−PCG exhibits a peak power density of 296.1 mW cm−2 at 500 mA cm−2, outperforming Pt/C (241 mW cm−2 at 438 mA cm−2). At 50 mA cm−2, it delivers a discharge voltage of 1.19 V and a specific capacity of 815 mAh g−1, surpassing Pt/C (1.13 V, 715 mAh g−1). These results demonstrate that morphology and porosity engineering can concurrently optimize intrinsic activity, site utilization, and mass transport, offering a rational design strategy for high-performance PGM-free catalysts.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4249-2

Bioinspired Temperature-Responsive Anisotropic Cilia Surface for Flexible Manipulation of Underwater Bubbles

Underwater bubble manipulation is critical for water electrolysis, heat transfer, and mineral flotation, yet existing strategies relying on buoyancy or Laplace gradient forces from asymmetric surface geometries suffer from limited flexibility and narrow applicability. This work introduces a temperature-responsive anisotropic cilia surface (TRAS) that achieves bidirectional long-range bubble transport by modulating elastic modulus and stiffness. The TRAS enables precise control over the asymmetric three-phase contact line and viscous resistance, facilitating reversible bubble motion. Experimental validation using aqueous ethanol droplets with varying surface tensions (73.16 mN/m for 0 vol% to 22.27 mN/m for 100 vol%) on cilia with center-to-center spacings of 0.2–1.0 mm reveals that transport direction depends on both cilia spacing and liquid surface tension. Droplets of 0 vol% and 20 vol% ethanol exhibit sustained reverse transport on hard cilia, while 60 vol%, 80 vol%, and 100 vol% solutions show sustained forward transport. Notably, 40 vol% ethanol droplets display bidirectional transport at 0.6 mm spacing, reverse transport at 0.8 and 1.0 mm, and forward transport at 0.2 and 0.4 mm. These results demonstrate that tuning surface tension and cilia spacing provides a versatile platform for directional bubble manipulation, with promising applications in heat transfer, electrochemistry, and gas handling systems.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4267-y

Unveiling Space-Charge-Regulated Etching in MAB Ceramics: A Novel Vacuum Molten Salt Strategy for Mo2AlB2

The synthesis of two-dimensional MBenes from MAB-phase ceramics is impeded by uncontrolled etching kinetics that compromise structural integrity and yield. This study introduces a vacuum molten salt strategy to regulate space-charge accumulation during the selective removal of Al from Mo2AlB2, producing honeycomb-like architectures. The vacuum environment suppresses oxidative side reactions and modulates ionic transport, enabling precise control over etching depth and morphology. The resulting Mo2AlB2 exhibits exceptional electromagnetic wave absorption, with a minimum reflection loss of -56.3 dB at 2.4 mm and an effective absorption bandwidth of 6.8 GHz. These metrics surpass conventional etching-derived MBenes by a factor of 2.5 in attenuation capacity. The space-charge-regulated mechanism is elucidated through in situ spectroscopic and computational analyses, revealing that vacancy-induced charge redistribution governs the etching front propagation. This work establishes a scalable route for high-purity MBenes with tailored porosity, addressing critical bottlenecks in energy absorption and catalytic applications. The vacuum molten salt approach eliminates the need for hazardous HF, offering a safer and more environmentally benign pathway for industrial translation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4415-3

Electromagnetic Wave Absorbers Based on Nanofibers: Foundation, Preparation and Application

The escalating demands of military stealth platforms and the proliferation of electromagnetic pollution have intensified the need for high-performance electromagnetic wave (EMW) absorbers. Nanofibers, characterized by high specific surface area and favorable composite compatibility, are engineered into absorbers with outstanding electromagnetic properties. This review consolidates the preparation and optimization strategies for nanofiber-based absorbers. The electromagnetic attenuation mechanisms are first outlined, followed by a systematic classification of nanofiber fabrication methods into two principal categories: in-situ synthesis and electrospinning-derived processes. Recent advances in optimization strategies for absorbers constructed from nanofibers with tailored electromagnetic characteristics are then examined. The review draws upon representative studies, including ultrathin and flexible electromagnetic interference shielding films via interface-confinement, design strategies for wave-absorbing polymer-based shielding materials, impedance-matchable 3D MXene sponge/NiFe@NC heterostructures with tunable pores, and the influence of fiber coating on SiCf/epoxy composites. These works collectively demonstrate the critical role of fiber architecture, interface engineering, and impedance matching in determining absorption performance. The analysis identifies persistent challenges in scalability, cost, and environmental stability, and outlines future prospects for nanofiber-based EMW absorbers. This review provides a foundational reference for researchers and engineers seeking to translate nanofiber absorber concepts into deployable stealth and pollution-mitigation technologies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4499-9

Ferroelectric two-dimensional In-Se materials: a review on the structure, property and application

Two-dimensional (2D) ferroelectric materials have emerged as promising candidates for next-generation non-volatile memory and neuromorphic computing, yet their integration into commercial devices faces substantial hurdles. This review critically examines the structure, properties, and applications of ferroelectric 2D In-Se materials, with a focus on their potential to overcome the scaling and retention limitations of conventional ferroelectrics such as Hf0.5Zr0.5O2 (HZO). The manuscript synthesizes recent advances in In-Se ferroelectricity, including the mechanisms of polarization switching, modulation strategies, and device demonstrations. Key experimental benchmarks from the literature are analyzed, such as the high data retention and read endurance of 5-nm HZO ferroelectric FETs (IEEE Electron Device Lett, 2019, 40(3): 399-402) and the giant barrier height modulation in ferroelectric van der Waals heterojunctions (Nat Electron, 2020, 3: 466-472). The review also highlights the performance of sliding ferroelectric memories based on rhombohedral-stacked bilayer MoS2, which achieved non-volatile storage with low power consumption (Nat Commun, 2024, 15: 10796). Despite these advances, critical challenges remain: the scalability of In-Se synthesis, the control of domain dynamics at the nanoscale, and the cost parity with silicon-based technologies. By consolidating empirical data and identifying unresolved bottlenecks, this review provides a roadmap for researchers and engineers aiming to translate 2D ferroelectric In-Se from laboratory curiosities to manufacturable devices. The analysis underscores the need for standardized metrology and accelerated lifetime testing to validate industrial viability.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4245-4

Single-component MXene-based sensor array generates independent and high-dimensional characteristics for discriminating volatile organic compounds

The discrimination of volatile organic compounds (VOCs) at trace concentrations remains a critical challenge for environmental monitoring, industrial process control, and non-invasive disease diagnostics. Conventional electronic noses rely on sensor arrays comprising multiple chemically distinct receptors, which introduces fabrication complexity, calibration drift, and cross-sensitivity. Here, we demonstrate that a single-component Ti3C2Tx MXene (TM) sensor array, engineered through controlled surface chemistry and device architecture, generates independent and high-dimensional characteristics (IHC) sufficient for precise VOC pattern recognition. By exploiting the intrinsic heterogeneity of TM basal planes and edge sites, we achieve differential interaction motifs without expanding elemental composition. The array discriminates VOCs including acetone, ethanol, toluene, and hexane at concentrations down to 100 ppb with classification accuracy exceeding 95%. Principal component analysis reveals distinct clustering with cumulative variance of 92.3% captured by the first three principal components. The sensor exhibits a limit of detection of 50 ppb for acetone and response/recovery times of 12 s and 18 s, respectively. Long-term stability tests over 30 days show less than 5% signal degradation. This single-component strategy simplifies fabrication, reduces calibration overhead, and offers a scalable pathway for miniaturized, low-power VOC sensing platforms compatible with Internet of Things (IoT) deployment.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4358-y

Rational Design of Oxygen Electrocatalysts Guided by Reaction Intermediates

Oxygen electrocatalysis underpins the viability of proton-exchange-membrane water electrolyzers and rechargeable Zn–air batteries, yet commercial deployment remains constrained by the sluggish kinetics of the oxygen evolution reaction (OER) and oxygen reduction reaction (ORR), which impose overpotentials exceeding 300 mV and accelerate catalyst degradation. This review, submitted to SCIENCE CHINA Materials (Manuscript ID SCMs-2026-1384.R1), synthesizes recent advances in rational catalyst design guided by the direct observation and theoretical treatment of reaction intermediates. The authors compile evidence from in situ characterization and computational modeling to establish that intermediate binding energies—particularly *OOH, *O, and *OH on Ru, Ir, Co, and Fe–N–C active sites—serve as predictive descriptors for activity and stability. Cited works demonstrate that 4f-modified Ru–O polarity, spin-balanced Janus Ir–Co magnetic atoms, and aligned d-orbital energy levels in dual-atom sites can shift rate-determining steps and lower activation barriers. The review further examines interfacial microenvironment engineering via anion adsorption, ligand functionalization, and S,N co-doped carbon confinement, which modulate local pH, water orientation, and mass transport. Emphasis is placed on dual-site mechanisms, including FeN6–CoN4 and Co-substituted Ni coordination polymers, where synergistic strong–weak adsorption coupling alters ORR pathways from adsorbate evolution to dissociation. The manuscript provides a critical assessment of descriptor reliability, noting that intermediate binding alone cannot capture dynamic reconstruction, electrolyte effects, or long-term operational stability. By integrating in situ spectroscopy with descriptor-based design, the review offers a framework for translating mechanistic insight into durable, cost-effective oxygen electrocatalysts for industrial electrolysis and metal–air batteries.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4383-8

Engineering Multifunctional Nano-PROTACs Platforms for Precision Cancer Therapy

Conventional cancer therapies remain constrained by undruggable oncogenic proteins and acquired resistance. Proteolysis targeting chimeras (PROTACs) have emerged as a transformative modality that harnesses the ubiquitin-proteasome system to selectively degrade target proteins, offering advantages over traditional small-molecule inhibitors. However, clinical translation of PROTACs is impeded by intrinsic physicochemical limitations: high molecular weight, poor bioavailability, and lack of tumor-specific delivery. Integrating PROTACs with nanotechnology has yielded advanced nano-PROTACs platforms. Nanocarriers enhance solubility and stability, optimize pharmacokinetics, and enable spatiotemporally controlled drug release through passive or active targeting. This review systematically summarizes recent advances in engineering multifunctional nano-PROTACs for cancer therapy, with particular emphasis on design strategies by which nanoengineering enhances PROTAC performance. We evaluate how these platforms improve anticancer efficacy and minimize systemic toxicity while exploring their therapeutic potential in monotherapy and synergistic treatment settings. Finally, we discuss current challenges and future perspectives, providing a theoretical and technical foundation for next-generation nano-PROTACs as a precise and potent strategy in precision oncology.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4405-9

A Scalable Superhydrophobic Zero-Dimensional Hybrid Copper(I) Halide for Solid-State Lighting and Multifunctional X-Ray Imaging

Conventional metal-halide X-ray scintillators, including Bi4Ge3O12 (BGO), Cs(Na)I:Tl, and Lu1.8Y0.2SiO5:Ce (LYSO), suffer from hygroscopic decomposition, high-temperature fabrication, and mechanical rigidity, which restrict their deployment in harsh-environment radiography. This study reports a nontoxic zero-dimensional organic–inorganic hybrid copper(I) halide, Cu2I2(C26H36NP)2 (Compound G), synthesized via a room-temperature solution route. The bulky phosphine ligands confer exceptional superhydrophobicity, with the material retaining 91.95% of its initial luminescence after 30 days of water immersion. A flexible scintillator screen fabricated from styrene-ethylene-butene-styrene (SEBS) exhibits a light yield of ~32,500 photons MeV-1, a spatial resolution of 19.14 lp mm-1, and a detection limit of 0.8 μGyair s-1. The screen enables stable X-ray imaging under flexible, high-temperature, and underwater conditions, eliminating vignetting and distortion in nonplanar objects. These metrics demonstrate that the superhydrophobic copper(I) halide scintillator addresses the water-stability bottleneck of commercial scintillators while delivering competitive light output and resolution, offering a viable pathway for medical diagnosis, nondestructive inspection, security checking, and space exploration.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4448-y

Zero-Dimensional Hybrid Zinc Halides with Bright Self-Trapped Exciton Emission for Switchable Encryption and Decryption

Zero-dimensional (0D) hybrid metal halides are promising for optoelectronic displays, bioimaging, and anti-counterfeiting due to strong exciton localization and self-trapped exciton (STE) emission. However, low-toxicity, biocompatible zinc halides with blue emission remain scarce, hindered by structural isolation of [ZnBr4]2− tetrahedra, electron-phonon coupling, lattice distortion, and nonradiative relaxation. Here, we synthesize MPAZnBr4 (MPA = N-(3-aminopropyl) morpholine), a 0D zinc bromide halide. Single-crystal X-ray diffraction reveals a monoclinic P21/c space group with a = 6.65190 Å, b = 16.11210 Å, c = 13.79640 Å, β = 94.5700°, Z = 4, and a calculated density of 2.394 g/cm3. The isolated [ZnBr4]2− tetrahedra are hydrogen-bonded to MPA cations, with the shortest Br···Br contact of 4.76 Å indicating weak inter-cluster electronic coupling. Upon photoexcitation, MPAZnBr4 exhibits bright blue emission centered at 450 nm with a full width at half maximum of 135 nm. Wavelength-dependent emission mapping confirms a single radiative pathway, while temperature-dependent photoluminescence identifies triplet STE emission with a thermal quenching activation energy of 55 meV. The extensive hydrogen-bonding network imparts remarkable structural stability, showing negligible photoluminescence decay under prolonged excitation or storage. As a proof-of-concept, we demonstrate switchable and rewritable information encryption and decryption, enabling complex luminescent patterns. These findings provide a strategy for constructing highly stable, low-toxicity blue-emissive Zn-based 0D metal halides for advanced photonic and information-security applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4476-1

From Coil to Rotation: A Bat-Inspired Light-Driven Soft Robot with Self-Sustained Oscillation

Self-sustained oscillation in soft actuators enables autonomous, untethered robotic locomotion, yet existing light-driven systems suffer from low oscillation frequencies, rapid photothermal degradation, and reliance on external controllers. This work presents a bat-inspired soft robot that converts continuous near-infrared (NIR) irradiation into sustained rotational motion via a coiled MXene-based liquid crystal elastomer (LCE) actuator. The actuator integrates Ti3C2Tx MXene nanosheets as photothermal converters within an LCE matrix, achieving a photothermal conversion efficiency of 78.3% and a steady-state temperature of 142 °C under 1.5 W cm−2 NIR (808 nm). The coil geometry induces a self-shadowing effect that generates periodic light exposure, producing autonomous oscillation at 2.7 Hz with an amplitude of 45°. The robot demonstrates a rotational speed of 120 rpm and a specific power density of 3.2 W kg−1, outperforming previously reported light-driven oscillators by a factor of 2.5. Under continuous operation for 10,000 cycles, the actuator retains 92% of its initial oscillation amplitude, with a degradation rate of 0.008% per cycle. The bat-inspired wing morphology enables directional rotation and obstacle avoidance in confined spaces. This platform eliminates the need for external modulation, offering a scalable route to autonomous soft robotics for inspection, environmental monitoring, and micro-manipulation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4365-2

Gradient Conductivity Boosts Flexible Tactile Sensors to Record Sensitivity and Linear Range

The intrinsic trade-off between sensitivity and linear range in piezoresistive tactile sensors has constrained their adoption in high-fidelity flexible electronics. This study introduces a layer-by-layer gradient conductivity (LGC) architecture that decouples these competing metrics. Through sequential deposition of conductive layers with decreasing filler content, the LGC resistive layer establishes a monotonic resistance–pressure relationship. The optimized LGC0.4@3 sensor achieves a record sensitivity of 0.4 kPa⁻¹ and a linear range extending to 300 kPa, as evidenced by relative electrical response measurements (Figure 1d). Dynamic monitoring of ground slope changes and convexity/concavity features (Figure 1e,f) confirms real-time operational stability. The gradient design mitigates percolation saturation, enabling linear output across three orders of magnitude. This advance addresses a critical bottleneck in tactile sensing, offering a scalable pathway for robotic proprioception and wearable health monitors. The fabrication protocol is compatible with roll-to-roll processing, with potential for cost parity against commercial capacitive sensors. Industrial translation requires further validation under cyclic loading and environmental aging, but the demonstrated metrics position LGC sensors as a viable alternative for applications demanding both high sensitivity and broad dynamic range.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4416-8

Efficient green carbene-copper(I)-amide complexes enabled by a pyrimidine-fused N-heterocyclic carbene ligand

Copper(I)-based carbene-metal-amide (CMA) emitters offer an earth-abundant alternative to precious-metal phosphors for organic light-emitting diodes (OLEDs), yet efficient green emission remains scarce due to limited π-extension and unbalanced charge-transfer characteristics of N-heterocyclic carbene (NHC) ligands. This work introduces a pyrimidine-fused NHC ligand (CF3PMI) with balanced π-accepting ability, synthesized via a one-pot protocol in good yields. The resulting Cu(I)-CMA complex CF3PMI-BFCF3 exhibits green thermally activated delayed fluorescence (TADF) in doped thin films, with a photoluminescence quantum yield (PLQY) of 90% and a short emission lifetime of 1.16 μs. A vacuum-deposited OLED achieves green electroluminescence centered at 514 nm with an external quantum efficiency (EQE) of 22.7%. Furthermore, a hyperfluorescent OLED employing CF3PMI-BFCF3 as a sensitizer delivers an EQE of 21.8%, green emission at 537 nm, and a narrow full width at half maximum (FWHM) of 30 nm. These results establish a viable molecular design strategy for high-performance green-emitting Cu(I)-based TADF materials and provide a convenient synthetic route for Cu(I)-CMA emitters.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4494-9

Silver Disorder Enables Thermal Insulation in Both Crystalline and Amorphous Ag26I18W4O16

Superionic conductors exhibit high cation mobility arising from weak binding and continuous transport pathways, atomistically characterized by extensive structural disorder and partial occupancy akin to amorphization. This disorder, whether confined to a cation sublattice or extended to full amorphization, strongly impedes lattice thermal transport, rendering these materials intrinsically ideal thermal insulators. This work investigates Ag26I18W4O16, a superionic conductor tunable from fully amorphous to single-crystalline states, as a model system to probe the impact of disorder and amorphization on thermal transport. Extensive Ag+ disorder, in both crystalline and amorphous phases, reduces thermal conductivity to approximately the theoretical lower bound of 0.16 W/m-K with virtually no temperature dependence, while concurrently achieving the lowest mean sound velocity ever recorded for a dense solid. Pair distribution function (PDF) analysis of synchrotron X-ray total scattering data indicates that short-range disorder (< 5 Å), rather than long-range periodicity, governs thermal insulation performance in both phases. These findings suggest a design strategy reconciling structural stability with glass-like thermal insulation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4466-3

Ultrasonic Vibration-Assisted Mechanical Coating of Cr Powders on 45 Steel for Superior Corrosion Resistance

Conventional surface coating technologies for 45 steel are constrained by high processing temperatures, limited material compatibility, and insufficient interfacial bonding. This study introduces ultrasonic vibration-assisted mechanical coating (UVAMC) as a low-temperature deposition route that mitigates these limitations. The process yields a chromium coating on 45 steel with a nanoscale elemental interdiffusion transition layer at the interface, achieving a bonding strength of 66.0 MPa. The coating delivers improved corrosion resistance in aggressive environments while preserving the substrate's original compressive and tensile strength. The method also demonstrates broad process adaptability, successfully depositing copper, aluminum, and 316 stainless steel powders, and forming complex shapes such as the "SZU" pattern. These results establish UVAMC as a viable surface functionalization strategy for metallic materials, combining efficient deposition with operational flexibility.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4404-7

Stabilizing High-Entropy Substrates and Tailoring Interfacial Water: High-Valent Pt Single Atoms Drive Durable Propylene Epoxidation

Electrochemical propylene epoxidation offers a sustainable route to propylene oxide (PO), but achieving high selectivity and stability under industrial current densities remains challenging. Herein, we report a high entropy amorphous CoFeNiCrMnBOx borate loaded with high valence Pt single atoms catalyst (a-Pt-HEBO) for stable bromine radical-mediated propylene epoxidation reaction (BrPOR). The high-entropy amorphous structure reshapes the interfacial hydrogen-bonding network and enriches free water, substantially lowering the energy barrier for water dissociation. Meanwhile, the strong electronic interactions between the coordinatively unsaturated, high-valence single Pt atoms and the substrate effectively prevent transition metal dissolution at high anodic potentials. The catalyst achieved 82.1% Faraday efficiency of PO at an industrial grade current density of 100 mA cm-2, and demonstrated excellent industrial application stability in up to 500 h of continuous test and within a scaled-up electrolyzer (4 × 4 cm2). This work provides a design for high-entropy catalysts in halogen-mediated electrosynthesis and a viable pathway toward carbon-neutral PO production.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4309-8

Potential-Dependent Stability of Iridium–Cobalt Oxide Nanosheets for Proton Exchange Membrane Water Electrolysis

Iridium-doped cobalt oxide nanosheets derived from a ZIF template were evaluated as oxygen evolution reaction (OER) catalysts for proton exchange membrane water electrolysis (PEMWE). Residual carbon was removed via a post-synthetic treatment to isolate intrinsic catalytic behavior. The Ir0.23Co0.77Ox catalyst exhibited enhanced activity and durability relative to commercial IrO2 in a practical PEMWE device. Potential-dependent, stage-resolved characterization combined with theoretical calculations probed catalyst stability under different operating voltages, revealing degradation mechanisms tied to applied potential. Contact angle measurements showed that the Ir0.23Co0.77Ox membrane electrode assembly (MEA) had water and air contact angles of 126° and 143°, respectively, compared to 126° and 143° for an IrO2 MEA at identical Ir loading, indicating improved wettability and gas release behavior. The work provides a framework for understanding potential-dependent stability in acidic OER catalysts and demonstrates a viable route to reduce Ir loading while maintaining PEMWE performance.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4313-7

Janus Interface Materials: Reshaping Liquid-to-Vapor Mass Transfer through Asymmetry

Liquid-to-vapor mass transfer is central to energy and environmental processes. Conventional distillation relies on vapor-liquid equilibrium and device-level optimization, with materials playing passive structural roles. Non-boiling processes such as membrane distillation and interfacial solar evaporation localize phase change at confined interfaces, making mass transfer a materials-mediated transport phenomenon where interfacial structure and chemistry dictate evaporation kinetics, vapor escape, and solute rejection. Janus interface materials, featuring spatially separated hydrophilic and hydrophobic domains, introduce architectural asymmetry to regulate liquid-to-vapor mass transfer. This review summarizes recent advances, highlighting mechanisms including the cooperative pump-valve effect, nanoconfinement-enhanced transport, and mitigation of fouling and scaling. Representative applications in membrane distillation, solar-driven evaporation, and personal thermal-moisture management are systematically discussed. Key challenges and future opportunities are outlined, particularly in advancing fundamental understanding, scalable fabrication, and practical implementation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4468-6

Liquid Metal-Modified MXene Composite Films for Electromagnetic-Multispectral Compatibility

The proliferation of multispectral detection platforms demands materials that simultaneously satisfy electromagnetic interference (EMI) shielding and infrared (IR) camouflage without compromising radio-frequency (RF) transmission. Conventional MXene films exhibit exceptional EMI shielding (>40 dB) but suffer from high IR emissivity and severe RF reflection, precluding integration with wave-transmitting arrays. This work introduces liquid metal (LM)-modified MXene composite films engineered via structural patterning to decouple optical, IR, and RF responses. The LM phase, dispersed within the MXene interlayer galleries, reduces free-electron density and tailors the dielectric loss, while a periodic array architecture creates impedance-matched windows for RF transmission. The resulting films achieve an EMI shielding effectiveness of 36 dB at 510 µm thickness, with a low IR emissivity of 0.36 and an RF transmittance exceeding 80% in the X-band. The patterning strategy suppresses surface current continuity, mitigating the trade-off between shielding and transmission. These metrics represent a 20% improvement in IR camouflage and a 15% enhancement in RF transparency relative to pristine MXene films. The composite films also demonstrate mechanical flexibility, retaining 95% of initial conductivity after 1,000 bending cycles. This work establishes a scalable route for multispectral-compatible materials critical for next-generation stealth and communication systems.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4177-3

Phototherapeutic Efficacy and Cell Death Pathways of Atomically Precise Chiral Au25 Nanoclusters in Tumor Therapy

Chirality profoundly influences tumor therapy by regulating key physiological processes, yet the link between chirality and therapeutic properties of atomically precise metal nanoclusters (NCs) remains poorly understood. Atomically precise Au25 NCs protected by chiral cysteine ligands (L-Au25(cys)18, D-Au25(cys)18, and Rac-Au25(cys)18) were constructed and systematically investigated to elucidate the association between chirality and tumor therapeutic performance. Although no significant difference in enzyme-like activity was observed among the three NCs, Rac-Au25(cys)18 exhibited enhanced reactive oxygen species generation under 808 nm laser irradiation, achieving superior phototherapeutic effects in both in vitro and in vivo tumor models. The chiral Au25 NCs induced distinct cell death pathways: L-Au25(cys)18 primarily triggered ferroptosis, D-Au25(cys)18 induced both ferroptosis and apoptosis, and all three NCs activated disulfidptosis. In vivo, tumor inhibition rates for L-Au25, D-Au25, and Rac-Au25 groups were 46.7%, 42.5%, and 68.3%, respectively, with no significant body weight fluctuations and minimal hepatorenal toxicity. Hematological and histopathological analyses confirmed favorable systemic biocompatibility. This work clarifies the correlation between chiral structures and tumor therapeutic performance of gold NCs, providing experimental insights and theoretical support for the design of novel chiral nanomaterials and optimization of precise tumor phototherapeutic strategies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4275-3

Titanous Coordination Stabilized Zero-Valent Ruthenium for Triboelectric Nanogenerator Driven Electrochemistry Chlorination of Ballast Water

Electrochemical in-situ production of active chlorine (AC) via chlorine evolution reaction (CER) can alleviate hull corrosion and residual chlorine overage, which is a highly reliable disinfectant for sewage and ballast water. Nonetheless, the primarily competitive oxygen evolution reaction and gradual anode passivation hinder its practical application. Herein, we employed the in-situ hydrothermal strategy to synthesize Ru/TiO2-x to realize high activity and selectivity of CER. The robust interaction of Ru sites and TiO2-x achieved via a one-step hydrothermal synthesis strategy, the structural and valence state characterizations confirm that Ti3+ stabilizes Ru solely in the metallic state (Ru0) via structural confinement effects, effectively inhibiting catalyst oxidation. As a result, the Ru/TiO2-x requires only an overpotential of 33 mV to reach 10 mA cm−2, and possess strong catalytic durability, sustaining continuous operation for 100 h with negligible current decay. Further integration with a triboelectric nanogenerators successfully realizes the generation of AC, which demonstrates a >99.9% inactivation efficiency against Escherichia coli in simulated seawater environments, while also effectively degrading ammonia nitrogen and urea contaminants in domestic wastewater.

Nano Research Energy2026DOI: 10.26599/NRE.2025.9120181

Hierarchical ionic networks in polymer electrolyte boost high-voltage solid-state Li batteries with stable interfaces and long cycling

Solid-state lithium metal batteries (SLMBs) demand quasi-solid polymer electrolytes (QSSPEs) that simultaneously deliver high ionic conductivity, interfacial stability, and oxidative resistance. This study reports a QSSPE membrane (MP46) formulated with MG30:LiTFSI:succinonitrile at a 10:4:6 weight ratio, exhibiting a wide electrochemical window of 5.1 V. Complementary infrared spectroscopy, small-angle X-ray scattering, and electron microscopy reveal a hierarchical ionic conductive network consisting of sphere-like nanostructures embedded within microphase-segregated architectures. This morphology enhances lithium-ion transport while preserving mechanical integrity. The strong interfacial adhesion between MP46 and lithium metal enables stable lithium plating and stripping for over 800 h at 0.2 mA·cm–2, effectively mitigating dendrite formation. When paired with LiFePO4 and LiCoO2 cathodes, MP46 sustains prolonged cycling, retaining 80.1% capacity after 1400 cycles at 2 C and 92.1% after 200 cycles at 4.5 V, respectively. Pouch-type cells further demonstrate mechanical flexibility and operational safety under deformation. These results establish MP46 as a viable candidate for stable high-energy-density SLMBs, offering fundamental insights into the design of next-generation polymer electrolytes.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4491-3

Electrically Controlled Multi-State Memory Magnetic Tunnel Junctions Based on Multiferroic Tunneling Barriers

Magnetic tunnel junctions (MTJs) with multiferroic tunneling barriers offer a pathway to fully electrically controlled multi-state memory, addressing the high energy costs and scalability limits of magnetically controlled counterparts. In this work, we propose a theoretical design achieving four or ten distinct resistance states via electrical control, with a giant tunneling magnetoresistance (TMR) ratio of 1.1×10^4% (11000%). This value surpasses all previously reported MTJs, including experimental systems such as CoFeB/MgO/CoFeB (TMR 65%, 4 states) and theoretical systems like Ga2O3/MgO/Ga2O3 (TMR 1120%, 2 states). The multiferroic barrier enables simultaneous control of ferroelectric and magnetic order parameters, allowing reversible switching between multiple resistance levels without external magnetic fields. Our first-principles calculations reveal that the high TMR arises from spin-dependent tunneling through the barrier, modulated by the ferroelectric polarization direction and magnetization configuration. The device operates with low write energy and exhibits non-volatile retention, making it suitable for high-density storage and in-memory computing. This work establishes a new benchmark for electrically controlled MTJs and provides a practical route to overcome the limitations of current spintronic memory technologies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4502-1

Thermal-enhanced near-infrared-II luminescence from Sb3+/Er3+ co-doped Cs3GdCl6 microcrystals

Near-infrared-II (NIR-II, 1000-1700 nm) luminescent materials are pivotal for deep-tissue bioimaging and optical communication, yet their performance is often limited by low quantum yields and thermal quenching. Here, we report a thermal-enhanced NIR-II luminescence in Sb3+/Er3+ co-doped Cs3GdCl6 microcrystals synthesized via a modified Bridgman method. Under ultraviolet excitation, the co-doped microcrystals exhibit intense NIR-II emission centered at 1532 nm corresponding to Er3+: 4I13/2 → 4I15/2 transition, with a maximum relative sensitivity of 1.2% K−1 at 303 K. Notably, the integrated NIR-II emission intensity increases by 2.3-fold from 298 K to 373 K, demonstrating anomalous thermal enhancement. This behavior is attributed to the thermally activated energy transfer from Sb3+ sensitizers to Er3+ activators, as confirmed by temperature-dependent photoluminescence spectra and decay kinetics. The energy transfer efficiency reaches 86% at room temperature and further improves with rising temperature. The microcrystals also show excellent photostability, retaining 95% of initial intensity after 120 min continuous UV irradiation. Furthermore, we demonstrate a proof-of-concept wireless optical communication link using the microcrystals as a NIR-II phosphor, achieving a signal-to-noise ratio of 30 dB at 400 Hz modulation frequency. These findings provide a new strategy for designing thermal-enhanced NIR-II luminescent materials and expand their potential in temperature sensing and optical communication.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4273-3

Emergent Strain Engineering of Freestanding Oxide Membranes

Freestanding membranes have driven a profound evolution of strain engineering by fundamentally overcoming the substrate clamping effect. This structural degree of freedom enables the introduction of spatially complex, reversible, and giant strain fields into the membranes via mechanical manipulations such as stretching, bending, and interfacial twisting, ultimately facilitating the modulation of diverse physical properties. This review systematically discusses recent experimental and theoretical advances in the field, highlighting the modulation of physical properties via uniaxial/biaxial strain, strain gradients, and oxide twist. These mechanical strain strategies substantially broaden the range of achievable material properties, furthermore provide fundamentally new pathways for realizing unconventional mechanical behaviors, inducing emergent polar topological structures, and exploring correlated electronic states. Finally, this review summarizes current methodologies for implementing emergent strain engineering of oxide membranes, delves into the profound impacts of spatially complex strain on the fundamental physical properties of freestanding oxides, and offers a forward-looking perspective on the tremendous opportunities and challenges in this rapidly evolving field.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4306-5

Scale-up fabrication of MOF membranes toward olefin/paraffin separation

Olefin-paraffin separation is a critical and energy-intensive process in the petrochemical industry, with ethylene and propylene purification alone consuming 0.3% of global energy. Current distillation methods are energy-inefficient, and polymer membranes exhibit inadequate separation performance. Metal-organic frameworks (MOFs), particularly ZIF-8, offer precise molecular sieving due to their uniform pore aperture (~3.4 Å), which lies between the kinetic diameters of propylene and propane. Despite excellent lab-scale performance, ZIF-8 membranes face scalability challenges, with effective areas typically below 10 cm², far from the tens of thousands to millions of square meters required industrially. This paper reviews a recent breakthrough by Weihong Xing, Yichang Pan, and colleagues, who developed a micro-space transformation process (MSTP) for scalable fabrication of heterostructured ZIF-8 (HZIF-8) membranes. Using sealed inner lumens of tubular ceramic supports as confined reaction spaces, they achieved single-tube areas of ~200 cm² and total fabricated areas exceeding 4.6 m². The membranes demonstrated stable separation performance over 30 days at 17 bar and 55 °C with a feed flow of 20 Nm³ d⁻¹. This work represents a significant step toward industrial application, addressing critical bottlenecks in membrane area expansion, defect control, and mechanical stability.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4138-5

Recent Advancements and Outlook of Electrocoagulation for Wastewater Treatment

Electrocoagulation (EC) has emerged as a promising electrochemical technology for wastewater treatment, offering distinct advantages over conventional chemical coagulation and membrane processes. This review systematically summarizes recent advancements in EC, focusing on the underlying mechanisms, key operating parameters, and diverse technical applications. The EC process involves three stages: electrolytic oxidation and in-situ coagulant formation, destabilization of contaminants, and floc formation. Unlike chemical coagulation, EC requires no external chemical additives, and process control is achieved by adjusting current density, voltage, or electrode materials, enabling adaptation to varying wastewater qualities. The review highlights the influence of dissolved organic matter (DOM) on EC efficiency, as clarified by Luo et al. (Water Research, 2025). Furthermore, it discusses reactor design innovations, including continuous-flow and cascade-type configurations, and the role of current waveforms in mitigating electrode passivation. The integration of EC with membrane bioreactors and forward osmosis is also examined, demonstrating enhanced treatment performance and fouling mitigation. Key challenges, such as energy consumption and electrode scaling, are addressed, along with future research directions. This comprehensive analysis provides a critical framework for optimizing EC systems and scaling them for industrial wastewater treatment, emphasizing the need for holistic reactor design and process integration to achieve sustainable water reuse.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4211-y

Strategies for Controllable siRNA Delivery in Gene Silencing and Cancer Therapy

Small interfering RNA (siRNA) holds promise for selective silencing of oncogenic drivers, yet its clinical translation is hindered by endosomal entrapment and inefficient cytosolic delivery. This review systematically examines the biological barriers to siRNA function, emphasizing that successful gene silencing requires not only cellular uptake but also endosomal escape, carrier dissociation, and RISC loading. We categorize current delivery strategies into carrier-free systems and stimuli-responsive carriers. Carrier-free approaches utilize coordination chemistry, molecular self-assembly, or peptide conjugation to form stable siRNA complexes that undergo intracellular dissociation. Stimuli-responsive carriers exploit endogenous tumor cues (e.g., acidic pH, elevated glutathione, specific enzymes, ATP) or exogenous triggers (e.g., light, ultrasound, magnetic fields) to achieve spatiotemporally controlled release. The review highlights recent advances in both strategies, with a focus on their application in cancer therapy. We critically assess the challenges that remain, including heterogeneity of tumor microenvironments, scalability of synthesis, and in vivo stability. Finally, we outline future directions for translating siRNA-based therapies into clinical practice, emphasizing the need for rational design of delivery systems that integrate multiple stimuli-responsiveness and active targeting to overcome biological barriers.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4285-2

UV-assisted coaxial DIW 3D printing: a strategy for fabricating environmentally adaptive ionic hydrogel sensors

Ionic conductive hydrogels have gained extensive attention in the field of intelligent sensing due to their good flexibility, tunable electrical conductivity, and multi-stimuli responsiveness. However, hydrogels easily freeze, dehydrate or swell in external environments, and thus losing their original structure and functions. Therefore, improving the environmental adaptability of conductive hydrogels remains a challenge. Herein, ionic hydrogels were encapsulated in real time via UV-assisted multi-material coaxial direct ink writing (DIW) 3D printing, and ionic conductive hydrogel sensors with array structures were prepared. The core ionic conductive hydrogel is isolated from the external environment by the hydrophobic photocurable polydimethylsiloxane (PDMS) shell resin. The PDMS shell resin isolates the core hydrogel from moisture and heat in the external environment, thereby significantly enhancing the sensor’s stability. After 60 days of storage at 25 °C, the 3D-printed coaxial array sensor exhibits only 2.5% mass loss; when stored underwater for 60 days, its swelling rate is merely 1.5%. This sensor exhibits high strain sensitivity with a gauge factor (GF) up to 1.705 and good cyclic stability, demonstrates stable operation over a wide temperature range of -20°C to 120°C, and can withstand underwater and solvent environments. It has been successfully applied in various scenarios such as human motion monitoring, underwater sensing, and temperature sensing. This research breaks through the environmental limitations of conventional hydrogel sensors and provides a simple, efficient method for developing flexible sensors with high environmental adaptability.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4302-9

Facilitated Diffusion of Organic Ammonium Salts via OD-Induced Porous PbI2 for Efficient Two-Step Inverted Perovskite Solar Cells

The pre-deposited lead iodide (PbI2) film in two-step inverted perovskite solar cells (PSCs) often exhibits a dense structure, which impedes the diffusion and reaction of organic ammonium salts, leading to unreacted PbI2 residues and compromised device performance. To address this, 2,4-oxazolidinedione (OD) is introduced as a molecule additive into the PbI2 precursor solution. Owing to its stronger coordination with PbI2, OD effectively modulates its crystallization behavior, resulting in a porous structure. This porous structure significantly facilitates the diffusion and infiltration of organic ammonium salts, thereby minimizing PbI2 residue and enhancing the completeness of the perovskite conversion. Furthermore, OD and the constructed porous network jointly retard the crystallization kinetics of perovskite, promoting the formation of perovskite films with improved crystallinity and preferred crystal orientation. Therefore, the optimized PSCs achieve a power conversion efficiency (PCE) of 26.31%, and demonstrate excellent operational stability, retaining 90.24% of initial PCE for 1500 h at 25°C and 90.47% after 1000 h at 65°C. The champion device exhibits a VOC of 1.197 V, a JSC of 26.28 mA cm-2, and an FF of 83.58%, with negligible hysteresis. This study presents a straightforward yet effective approach to advancing the performance and stability of inverted PSCs fabricated via the two-step method.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4210-6

Aza-Pyran Molecular Design for Low-Energy-Loss Organic Solar Cells: Achieving 19.86% Efficiency via Energetic Disorder Regulation

Achieving low-energy-loss organic solar cells requires precise regulation of energetic disorder and intermolecular packing, which remains challenging at the molecular design level. Here, we report an aza-pyran-type molecular design strategy that integrates a sp3-hybridized nitrogen-centered core with a pyran structural motif to regulate aggregation behavior and energetic disorder in non-fullerene acceptors. Two representative acceptors, D10 and D11, are developed, both exhibiting broadened absorption and high open-circuit voltages, while D10 shows more balanced aggregation and improved long-range molecular ordering. When incorporated as guest acceptors into the PM6:L8-BO system, the optimized ternary device achieves a power conversion efficiency of 19.86% with a high VOC of 0.89 V. Detailed optoelectronic analyses reveal reduced non-radiative energy loss (ΔE3 ≈ 0.23 eV), enhanced electroluminescence quantum efficiency (~1.17 × 10-4), and lowered energetic disorder (EU = 25 meV) in the ternary blends. GIWAXS and charge-transport studies further demonstrate that the introduction of D10 promotes enlarged crystalline domains and more ordered π-π stacking, facilitating balanced carrier transport and suppressed recombination. This work establishes an effective molecular design paradigm that links aza-pyran molecular engineering with energy-loss management, providing new insights into the development of high-efficiency, low-energy-loss organic solar cells.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4339-7

Optoelectronic Memristors Based on ZnS-Passivated CdZnSe Quantum Dots for Neuromorphic Synaptic Emulation Enabling Information Encryption

Neuromorphic computing demands energy-efficient synaptic devices that emulate biological plasticity. Optoelectronic memristors based on colloidal quantum dots (QDs) offer tunable bandgaps and solution processability, yet suffer from defect-mediated nonradiative recombination and instability. Here, we report ZnS-passivated CdZnSe core/shell QDs as the active layer in memristive devices, achieving enhanced synaptic emulation and information encryption. Time-resolved photoluminescence (TRPL) decay curves were fitted with a tri-exponential function, revealing that ZnS passivation suppresses defect-related trap states, prolonging the average carrier lifetime from 12.3 ns (CdZnSe) to 28.7 ns (CdZnSe/ZnS). The intensity proportion of the fast decay component (τ1 ≈ 1.2 ns) decreased from 45% to 18%, indicating reduced surface trapping. Devices incorporating CdZnSe/ZnS QDs exhibit stable bipolar resistive switching with an ON/OFF ratio exceeding 10^3, endurance of >10^3 cycles, and retention of >10^4 s. Under 365 nm UV illumination, the devices show light-tunable synaptic plasticity, including paired-pulse facilitation (PPF) with a facilitation index of 180% at a 50 ms interval, and transition from short-term to long-term memory. The memristors successfully emulate essential synaptic functions and are employed in a simple encryption scheme, demonstrating the potential of defect-passivated QDs for secure neuromorphic hardware.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4202-3

Self-Photooxidation-Restructuring Enables NIR-II Absorption of Carbon Dots for Cancer Phototherapy

Carbon dots (CDs) with absorption in the second near-infrared window (NIR-II, 900-1700 nm) hold promise for tumor theranostics, yet existing synthesis methods often involve complex procedures, harsh conditions, or lack precise control. Here we report a 'self-photooxidation-restructuring' strategy that enables structural reorganization of the carbon core in CDs, achieving a significant redshift of absorption into the NIR-II region. Under ultraviolet (UV) light irradiation, the precursor (B-CDs, absorption in UV region) generates singlet oxygen, which self-oxidizes aldehyde groups and the carbon skeleton of B-CDs to stronger electron-withdrawing carboxyl groups and carbon radicals, respectively. These processes facilitate the formation of new C=C bonds between isolated aromatic domains, thereby transforming B-CDs into novel CDs (N-CDs) characterized by enhanced donor-acceptor interactions and a redshift in absorption toward the NIR-II window. Various experimental data, including high-resolution XPS, FTIR, NMR, EPR, have proved the proposed formation mechanism. The novel N-CDs afforded a high photothermal conversion efficiency of up to 71.33%, which enabled 1064 nm laser-activated photoacoustic imaging (PAI)-guided photothermal therapy (PTT) in tumors. This work opens a new avenue for the synthesis and modulation of CDs in the NIR-II region.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4373-2

Nanoscale Electronic-Structural Synergy Induced by Sr Doping Enables Record-Low Room-Temperature Infrared Emissivity in SmCoO3-Based Perovskites

Infrared stealth technology demands materials with simultaneously low infrared emissivity and robust environmental stability. Traditional coatings suffer from high emissivity or poor thermal stability. Here, we report Sr-doped SmCoO3 perovskite ceramics achieving a record-low room-temperature infrared emissivity of 0.12 in the 8–14 μm atmospheric window. Systematic doping (x = 0, 0.1, 0.2, 0.3, 0.4, 0.5) via solid-phase synthesis reveals that Sr substitution induces a Co3+/Co4+ mixed valence state, increases oxygen vacancy concentration, and distorts the lattice. First-principles calculations (CASTEP) confirm that doping narrows the bandgap from 1.8 eV to 0.9 eV and enhances the double-exchange interaction, boosting carrier concentration and mobility. The optimized composition (x = 0.3) exhibits an electrical conductivity of 1.2×10^3 S/cm and a carrier density of 3.5×10^21 cm^-3, leading to strong infrared reflection. The material maintains emissivity below 0.15 after 100 hours of thermal cycling at 300°C and 500 hours of humidity exposure (85°C/85% RH), demonstrating exceptional environmental durability. This work establishes a new paradigm for designing high-performance inorganic infrared stealth materials via electronic-structural synergy.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4342-3

Intrinsic Planarity in Partially Fused Electron Acceptors Enabled by Furan Thiophene Linkage Design

Electron acceptors containing single-bond-linked building blocks offer attractive advantages for organic solar cells owing to their synthetic simplicity and structural modularity. However, achieving backbone planarity without compromising electronic compatibility remains a persistent challenge. Conventional conformational locking strategies based on alkoxy substitution can effectively suppress torsional freedom but often elevate the highest occupied molecular orbital energy level, limiting compatibility with widely used donor polymers. Here, we report a partially fused electron acceptor design that achieves intrinsic backbone planarity through heterocycle selection rather than side-chain-assisted conformational locking. By incorporating a benzodifuran core and furan-thiophene linkages, the resulting acceptors exhibit a near-coplanar backbone geometry as revealed by density functional theory calculations, without the need for electronically perturbing alkoxy groups. Devices based on the optimized acceptor (BDF-1) deliver a binary power conversion efficiency of 12.2%, and further improvement to 19.5% is achieved in a ternary blend with PM6 and BTP-eC9. The enhanced performance is accompanied by favorable morphology, balanced charge transport, and suppressed recombination losses. This work provides molecular-level insight into partially fused acceptor design and demonstrates that heteroatom-guided conformational locking offers a viable strategy for expanding the design space of acceptors with single-bond-linked building blocks while maintaining compatibility with mainstream donor systems.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4359-0

Thickness-Insensitive A-D-A-A' Polymeric Cathode Interlayer for High-Efficiency Organic Solar Cells

Organic solar cells (OSCs) require cathode interlayers (CILs) that combine high charge transport, defect passivation, and thickness insensitivity for scalable manufacturing. Here, we report the synthesis of a novel A-D-A-A'-type polymer, PDPP2F-NDI-N, via the green and efficient direct arylation polymerization (DArP) method. The multiple electron-deficient units in the backbone confer strong electron-withdrawing character, effective work function modulation, enhanced built-in potential, high crystallinity, and ordered molecular packing. PDPP2F-NDI-N exhibits a high electron mobility of 1.01 × 10⁻³ cm² V⁻¹ s⁻¹ and electrical conductivity of 3.13 × 10⁻³ S m⁻¹, facilitating efficient charge extraction and transport. Its interfacial modification capability suppresses interfacial defects and reduces non-radiative recombination losses. In ternary OSCs, PDPP2F-NDI-N achieves a high power conversion efficiency (PCE) of 20.44%, with outstanding thickness insensitivity retaining 92.8% of peak PCE at a 30 nm CIL thickness, and a T80 lifetime exceeding 1700 hours under photo-thermal aging. This work demonstrates that poly(A-D-A-alt-A') backbone design combined with DArP synthesis provides an effective strategy for developing high-performance, thickness-insensitive, and stable polymeric CILs, advancing efficient, stable, and scalable OSC applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4394-x

Self-Assembly Growth of Single-Crystal Spiral Graphene on Liquid Heterogeneous Substrates

Spiral graphene, characterized by Bernal-stacked layers and unique electronic properties, holds promise for advanced quantum and optoelectronic devices. However, its controlled synthesis remains challenging. Here, we report the self-assembly growth of single-crystal spiral graphene on a liquid heterogeneous substrate via chemical vapor deposition (CVD). A 50-μm-thick Cu foil was placed on a Ni support and heated to 1083 °C, the melting point of pure Cu, ensuring a fully molten Cu layer on solid Ni. Growth proceeded for 30 minutes under optimized conditions. The resulting spiral graphene exhibits a uniform Bernal stacking configuration, as confirmed by transmission electron microscopy and selected-area electron diffraction. Time-of-flight secondary ion mass spectrometry (ToF-SIMS) depth profiling and isotope-labeling experiments reveal that carbon incorporation occurs predominantly at the spiral step edges, following a self-assembly mechanism driven by the liquid substrate's dynamic surface. Control experiments on solid Cu-Ni alloys yield no spiral morphology, underscoring the critical role of the liquid phase. The liquid heterogeneous substrate facilitates rapid carbon diffusion and step-edge attachment, enabling the growth of high-quality single-crystal spirals with controlled layer number. This work provides a scalable route to synthesize spiral graphene with tailored stacking, advancing its application in twistronics and high-performance electronics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4381-5

Highly Enhanced Average ZT in Bismuth Telluride Alloys via Pseudo Grain Boundary Engineering

Bismuth telluride (Bi2Te3)-based alloys remain the benchmark for low-temperature thermoelectric applications, yet their conversion efficiency is limited by the trade-off between electrical and thermal transport. This study introduces a pseudo grain boundary engineering strategy to simultaneously enhance the average figure of merit (ZT) in p-type (Bi,Sb)2Te3 (BST) materials. By incorporating Ag-based compounds, the carrier concentration is optimized via substitution of Ag+ ions, while the introduction of secondary phases at grain boundaries effectively suppresses lattice thermal conductivity. The approach yields a peak ZT of 1.35 at 393 K and an average ZT of 1.25 across 303–483 K, representing a significant improvement over pristine BST. Compared to prior reports, this work achieves superior average ZT while maintaining high electrical conductivity, addressing the longstanding bottleneck of thermal conductivity reduction without compromising carrier mobility. The findings underscore the efficacy of pseudo grain boundary engineering in advancing Bi2Te3-based thermoelectrics for solid-state cooling and power generation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4367-4

Enhanced γ-Ray Detection Performance of Cs3Cu2I5 Single Crystals via Suppression of Second-Phase Formation

Single-crystalline Cs3Cu2I5 has attracted considerable interest owing to its excellent scintillation performance and favorable stability. Nevertheless, second phases induced by peritectic reactions during melt growth give rise to deteriorated scintillation properties and promote crystal cracking. In this work, the effects of non-stoichiometric ratios of raw material (n(CsI)=0.57, 0.62, and 0.63) on the crystallization behavior and scintillation properties were systematically investigated. The results show that the crystal quality is optimal at n(CsI)=0.62, featuring high transparency, absence of macroscopic inclusions, and cracking free, with a PLQY of 79.3%. Temperature-dependent photoluminescence verifies the self-trapped exciton emission mechanism with strong exciton-phonon coupling, giving an exciton binding energy of 473.9 meV and a Huang-Rhys factor S of 79.8. The as-grown crystal exhibits an optimized light yield of 24,380 photons/MeV, an energy resolution of 3.8% for 137Cs (662 keV) γ-rays, a dominant decay time of 957 ns, and excellent linear response in the medium-to-high energy region. Precise regulation of the raw material stoichiometry can effectively suppress the formation of second phases, yielding high-quality Cs3Cu2I5 single crystals whose comprehensive performance demonstrates promising application potential in γ-ray detection.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4369-1

Dual-Modulation of Carbon Coating and High-Valence Nb5+ Doping Toward High-Performance Na3V2(PO4)2O2F Cathode for Sodium-Ion Batteries

Sodium-ion batteries (SIBs) are promising alternatives to lithium-ion batteries for large-scale energy storage due to sodium's abundance and low cost. Among cathode materials, polyanionic compounds like Na3V2(PO4)2O2F (NVPOF) offer high energy density and dual voltage plateaus at ~3.6 and 4.0 V, but suffer from low electronic conductivity and sluggish Na+ diffusion. Here, we report a dual-modulation strategy combining high-valence Nb5+ doping and polydopamine-derived carbon coating to synthesize Na3V1.94Nb0.06(PO4)2O2F-C (NVPOF-Nb-C) via a hydrothermal route. X-ray diffraction and Rietveld refinement confirm that Nb5+ doping induces slight lattice expansion without altering the tetragonal I4/mmm framework. Density functional theory calculations reveal that Nb5+ doping optimizes the crystal structure and reduces the Na+ diffusion barrier, while the uniform carbon coating enhances electron transport. Consequently, NVPOF-Nb-C exhibits remarkably improved electrochemical performance, including high reversible capacity, excellent rate capability, and ultralong cycling stability. In a full cell with hard carbon anode, it delivers a high energy density of 487.2 Wh kg−1 at 1C and retains 91.51% capacity after 3000 cycles at 20C. This work provides a synergistic strategy to overcome the intrinsic limitations of polyanionic cathodes for practical SIB applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4205-8

Lattice Distortion Effect in High Entropy Thermoelectric Materials: Mechanisms and Optimization Strategies

The global energy crisis and environmental pollution necessitate efficient recovery and utilization of thermal energy resources such as industrial waste heat. Thermoelectric materials, enabling direct conversion between thermal and electrical energy, offer broad application prospects in waste heat power generation and chip cooling. The energy conversion efficiency is determined by the dimensionless figure of merit, ZT = (S^2σ/κ)T, where S is the Seebeck coefficient, σ is the electrical conductivity, κ is the thermal conductivity, and T is the absolute temperature. Ideal thermoelectric materials require both a high power factor (PF = S^2σ) and low thermal conductivity. However, the strong coupling between electrical and thermal transport parameters makes synergistic optimization challenging. Over the past two decades, strategies such as band engineering, nanostructuring, liquid-like ions, interstitial atoms, phonon softening, and defect engineering have been explored. Among these, entropy engineering has emerged as a novel strategy that achieves synergistic optimization by introducing multiple components to increase configurational entropy. High entropy materials, originating from alloys, are defined as multi-principal element systems with five or more elements in near-equiatomic ratios forming single-phase solid solutions. The molar configurational entropy ΔS_conf = R∑x_i ln x_i, with materials classified as high entropy (ΔS_conf > 1.5R), medium entropy (1R < ΔS_conf < 1.5R), or low entropy (ΔS_conf < 1R). Four core effects are summarized: high entropy effect, lattice distortion effect, sluggish diffusion effect, and cocktail effect. Research has expanded from alloys to oxides, chalcogenides, and half-Heusler compounds. This review systematically summarizes the mechanisms by which lattice distortion in high entropy materials affects electrical and thermal transport, and discusses optimization strategies for thermoelectric performance.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4206-6

Dual-Function Ladder Polysilsesquioxanes for Precise Patterning and 3D Integration of High-Performance Flexible Organic Logic Circuits

Precise patterning of highly ordered organic semiconductor (OSC) thin-film arrays is critical for next-generation electronics. We report a ladder-like polysilsesquioxane (LPSQ) strategy to synthesize two functional analogs with tunable surface energies and robust dielectric properties. These LPSQ dielectrics, functionalized with alkyl or fluoroalkyl side chains, serve dual roles as gate insulators and patterning layers to guide blade-coating of 2,7-dioctyl[1]benzothieno[3,2-b][1]benzothiophene (C8-BTBT). This approach yields highly aligned arrays suitable for three-dimensional integration in flexible electronics. Synergistic combination of dense LPSQ dielectric packing and aligned semiconductor domains leads to excellent organic thin-film transistor (OTFT) performance, achieving approximately four-fold improvement in field-effect mobility compared to conventional silicon oxide dielectrics. Patterned LPSQ dielectrics enable high-resolution C8-BTBT patterning on plastic substrates, supporting 4-inch-scale 3D integration of flexible logic circuits, including inverters (voltage gain >100), NOR gates, and NAND gates. This work provides a scalable route to high-performance, large-area flexible organic circuits.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4236-8

Activated water molecular dissociation enhances nitrate electrochemical reduction activity by rational design of binary CoCu-Pi catalyst

Electrochemical nitrate reduction (NO3RR) to ammonia offers a sustainable route for nitrogen recovery from wastewater, yet its efficiency is constrained by complex multi-step proton-electron transfers and competitive hydrogen evolution. Here, we report a series of binary cobalt-copper phosphates with precisely tuned Co/Cu ratios, revealing a volcano-type relationship between composition and catalytic activity. The optimized Co0.5Cu1.5(OH)PO4 catalyst, supported on a Ni3Co1OxHy/Ni foam substrate, achieves a Faradaic efficiency of 99.0% for ammonia at a high current density of 200 mA cm−2 in 1 M nitrate electrolyte, with a production rate of 9.18 mg h−1 cm−2 and sustained stability over 200 hours. In-situ ATR-FTIR spectroscopy and density functional theory calculations elucidate a tandem mechanism: Co sites promote water dissociation to generate active hydrogen (H*), while adjacent Cu sites facilitate nitrate adsorption and subsequent hydrogenation steps. This synergistic division of labor lowers the energy barrier for the rate-determining step, effectively suppressing HER and enhancing intrinsic kinetics. The work demonstrates that precise atomic-ratio engineering in dual-site transition metal phosphates provides a viable strategy to overcome activity-selectivity trade-offs in electrocatalytic nitrate-to-ammonia conversion.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4212-x

Inhalable ROS-Responsive Liposomes for Orchestrating Microenvironment Remodeling and Epithelial Regeneration in Pulmonary Fibrosis

Idiopathic pulmonary fibrosis (IPF) is a lethal interstitial lung disease with limited therapeutic options. Current treatments, such as nintedanib and pirfenidone, target downstream fibrosis but fail to address the upstream drivers, including persistent alveolar epithelial injury and abnormal repair. This study presents an inhalable, reactive oxygen species (ROS)-responsive liposomal system (SAB/GC-1@Lip-cRGD) that co-delivers the antioxidant salvianolic acid B (SAB) and the thyroid hormone receptor β (TRβ) agonist Sobetirome (GC-1). The liposomes are surface-modified with cRGD peptides for targeted delivery to fibrotic lesions and possess a negative surface charge to enhance mucus penetration. In the high-ROS fibrotic microenvironment, the liposomes destabilize, releasing SAB and GC-1. SAB scavenges ROS to remodel the fibrotic niche, while GC-1 reactivates TRβ signaling, driving the differentiation of stalled Krt8+ transitional epithelial cells into functional alveolar type I (AT1) cells. In a mouse model of pulmonary fibrosis, SAB/GC-1@Lip-cRGD significantly reduced pro-inflammatory cytokines (TNF-α, IL-1β, IL-6) and TGF-β1 in bronchoalveolar lavage fluid and lung homogenates. The proportion of CD206+ M2 macrophages decreased from 27.4% in the model group to 6.2% after treatment, indicating potent anti-inflammatory and anti-fibrotic effects. This synergistic strategy of microenvironment remodeling and epithelial regeneration achieved robust collagen depletion, restoration of alveolar integrity, and recovery of pulmonary function, outperforming single-drug or non-targeted formulations. The work provides a generalized paradigm for integrating microenvironment regulation with regenerative repair in pulmonary diseases.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4176-y

An AIE-active centrosymmetric small molecule for ultra-deep three-photon brain angiography in the NIR-III window

Three-photon microscopy (3PM) in the near-infrared-III (NIR-III) window (1600–1840 nm) enables high-resolution visualization of cerebral vasculature in vivo, but its imaging depth and quality are limited by the performance of fluorescent probes. Here, we report a probe optimization strategy transitioning from mirror symmetry to centrosymmetry, yielding a highly symmetric aggregation-induced emission (AIE) molecule, T4PQ. The centrosymmetric structure aligns donor-acceptor units, promoting uniform electron cloud delocalization and directional charge transfer, which enhances exciton formation and suppresses non-radiative decay, thereby increasing fluorescence quantum yield. This symmetry also boosts the three-photon absorption cross-section by enhancing electron delocalization and transition dipole moment, enabling stronger nonlinear optical responses under long-wavelength excitation. T4PQ nanoparticles (T4PQ NPs) exhibit an enhanced three-photon absorption cross-section, high fluorescence quantum yield, and excellent photostability. In murine models, T4PQ NPs achieved three-dimensional cerebrovascular imaging at a depth of 1785 μm and real-time hemodynamic observation in microvessels at 1006 μm depth, with good biocompatibility. These results validate the advantage of centrosymmetric molecular design for deep-brain imaging probes, offering a high-performance tool for neurovascular research.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4180-9

Defect Engineering Activated Lattice Oxygen Mechanism in High-Entropy LDHs for Highly Active and Durable Oxygen Evolution

Developing highly active and stable electrocatalysts based on the lattice oxygen mechanism (LOM) for the oxygen evolution reaction (OER) represents a significant challenge in water splitting. Herein, we successfully introduce oxygen vacancies (Ov) into high-entropy MnFeCoNiCu layered double hydroxides (HE-LDHs) via a solution chemical reduction method utilizing a defect engineering strategy. By precisely tuning the concentration of oxygen vacancies, we effectively activate the lattice oxygen within the HE-LDHs. The optimized Ov-rich high-entropy LDHs (Ov-HE-LDHs) exhibit excellent OER catalytic performance, achieving a current density of 10 mA cm−2 with a remarkably low overpotential of only 210 mV in 1.0 M KOH electrolyte, which is substantially superior to pristine HE-LDHs (315 mV) and commercial IrO2 (330 mV). Furthermore, the catalyst demonstrates outstanding long-term stability, capable of stable operation for 500 h at a high current density of approximately 200 mA cm−2. Advanced X-ray absorption fine structure analysis elucidates the lower metal valence states, indicating the existence of oxygen vacancies, while isotope labeling experiments and in-situ electrochemical Raman spectroscopy strongly confirm the successful activation of the LOM pathway. Density functional theory calculations further validate that the shift in the OER mechanism towards LOM and the resulting reduction in the reaction energy barrier are the fundamental reasons for the catalyst’s enhanced intrinsic activity. This work proposes a novel strategy for activating lattice oxygen in high-entropy LDHs through defect engineering, offering new insights and experimental guidance for the design and development of highly efficient and stable high-entropy OER electrocatalysts.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4113-3

Biomimetic design of Turing-type grain boundary defects in copper catalysts for boosting CO2 electroreduction to multi-carbon products

Constructing abundant grain boundary defects is a promising strategy for developing high-efficiency catalysts. However, achieving dense grain boundary defects in CuO and Cu at the nanoscale remains challenging. Inspired by Turing patterns in nature, a Turing-type CuO catalyst (TGB-CuO) with abundant grain boundaries at ~10 nm nanoscale was prepared by annealing a dodecyl sulfate-intercalated basic copper carbonate. The balanced diffusion-reaction dynamics during pyrolysis drove the spontaneous formation of Turing-type grain boundary architectures in TGB-CuO. The resulting TGB-CuO electrode exhibited outstanding performance in electrochemical CO2 reduction (ECO2RR), delivering a Faradaic efficiency of 80.15% toward multi-carbon (C2+) products and maintaining over 50% ethylene selectivity at 300 mA cm−2 for 30 h of continuous operation. Activity investigations indicated that the metallic Cu retaining Turing-type grain boundary features (TGB-Cu) formed during electroreduction was responsible for the enhanced ECO2RR performance. The Cu(100)/(100), Cu(100)/(111), and Cu(111)/(111) grain boundaries promoted CO2 activation and *CO adsorption, while lowering the free energy barriers for the rate-determining *CO2− → *COOH step and C–C coupling step. This bioinspired reaction-diffusion strategy offers a new paradigm for creating high-density grain boundary defects, offering a general route toward efficient catalyst design.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4277-1

Anion modulation induced room-temperature ferromagnetism in two-dimensional CuCrSe2

Two-dimensional (2D) magnetic materials hold promise for next-generation spintronics, yet most exhibit Curie temperatures (Tc) far below room temperature, limiting practical applications. Here, we report the realization of room-temperature ferromagnetism in CuCrSe2 nanosheets via controlled anion removal achieved by post-synthetic vacuum annealing. Raw CuCrSe2 shows a low Tc of ~120 K, whereas annealed CuCrSe2 (A-CuCrSe2) nanosheets exhibit robust ferromagnetic ordering above 300 K. Structural and compositional analyses, including transmission electron microscopy, Raman spectroscopy, and X-ray absorption spectroscopy, confirm that A-CuCrSe2 retains the original layered crystal structure with an estimated Se vacancy concentration of approximately 10%. Magnetic measurements reveal room-temperature ferromagnetism in exfoliated nanosheets, corroborated by magnetic imaging and electric transport measurements. Anomalous Hall effect (AHE) measurements uncover the coexistence of two ferromagnetic phases within the same sample: one with low Tc (~120 K) and another with high Tc (>300 K), indicating spatially heterogeneous magnetic ordering driven by anion removal distribution. Density functional theory (DFT) calculations elucidate the microscopic mechanism, suggesting that Se vacancies modulate the magnetic exchange interactions, enhancing Tc. This work demonstrates that anion modulation is an effective intrinsic strategy to achieve room-temperature ferromagnetism in 2D materials, potentially advancing spintronic applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4234-3

Chemical confinement of short-chain sulfur into hierarchical porous hard carbon for ultra-stable high-capacity sodium-ion storage

The pursuit of high-energy-density sodium-ion batteries (SIBs) necessitates the development of stable high-capacity anodes. While amorphous carbon is a promising anode candidate for SIBs, its practical application is hindered by limited capacity. Herein, we design a composite anode by chemically confining a high-content (~25 wt%) short-chain sulfur into hierarchical porous hard carbon microspheres (SHHC) derived from microbe yeast. The SHHC anode exhibits a high reversible capacity of ~807 mAh g−1 at 0.03 A g−1 (~3 times that of conventional amorphous carbon) along with superior rate capability, and extraordinary long-term cyclability (almost 100% capacity retention after 2000 cycles at 1.0 A g−1). The high-content sulfur species contribute to superb redox reactivity for high-capacity sodium storage via a surface-dominated storage mechanism. The carbon matrix features an enlarged interlayer distance, which facilitates Na-ion intercalation and deintercalation for high-rate capability. Furthermore, the hierarchical porous structure with built-in cavities facilitates the Na-ion transfer and effectively accommodates the electrode’s volume expansion, achieving fast electrode kinetics and outstanding cyclability. Such a combination of favored properties leads to state-of-the-art comprehensive battery performance for Na-ion storage. Our finding envisions a new perspective on building stable high-capacity anode materials for SIBs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4287-1

Metal Atomic Clusters for Oxygen-Bearing Materials: From Adversity Comes Opportunity

Atomic-level manufacturing is a frontier technology enabling materials to achieve ultimate performance. This study explores the potential applications and critical scientific issues of metal atomic clusters, which are predominantly used in catalysis but suffer from intrinsic instability, leading to low yield, inconsistent size and structure, and susceptibility to agglomeration, oxidation, and sintering. We propose a novel concept: employing oxidized metal atomic clusters as dopants in oxygen-bearing materials, such as oxide dispersion strengthened (ODS) alloys, oxide-based cermets, and toughening ceramics. Using ODS alloy as a proof-of-concept, Ni-NiO coupled cluster-strengthened metallic Ni exhibits finer grains, a larger proportion of low-angle grain boundaries, higher geometrically necessary dislocation density, and achieves a 38% enhancement in Vickers hardness. To advance this concept, four critical scientific issues require resolution: oxidation control, disaggregation and dispersion, effectiveness comparison, and physicochemical behaviors and mechanisms. This work bridges the gap between atomic-level manufacturing and structural materials, offering a pathway to overcome the instability of metal clusters by leveraging their oxidation characteristics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4112-6

Highly Efficient Removal of Sr2+ by a Layered Potassium Phosphatoantimonate under Neutral and Acidic Conditions

Radiostrontium remediation is crucial for ecological protection and sustainable development of nuclear energy. However, efficient removal of 90Sr from complex radioactive liquid waste, especially under acidic conditions, remains challenging due to material instability and intense proton competition. Herein, the rapid and highly selective capture of Sr2+ in neutral and even acidic solutions has been achieved by a layered potassium phosphatoantimonate KSbP2O8 with excellent radiation and thermal stability. Under neutral conditions, it possesses high maximum adsorption capacity (qmSr = 110.25 mg g−1), rapid adsorption kinetics (the removal rate (RSr) of 91.54% within 30 min), and excellent selectivity for Sr2+, and facile regeneration. Particularly, even under acidic conditions (pH 2.0), KSbP2O8 still maintains excellent Sr2+ removal capacity (qmSr = 79.38 mg g−1), fast kinetics, and high selectivity. A mechanism study by multiple characterizations reveals that the efficient Sr2+ removal of KSbP2O8 mainly stems from ion exchange between Sr2+ and interlayer K+ in KSbP2O8, which is attributed to the synergy between the Sb5+-induced Brønsted acidity and the high charge density of the anionic framework. This study demonstrates the exceptional capability of phosphatoantimonates to selectively capture Sr2+ under acidic conditions, highlighting the potential of phosphatoantimonates as effective scavengers for radiostrontium remediation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4200-0

Bidirectional Bonding Interfacial Engineering Enables High-Performance Sb2S3/HgS Heterojunction Photodetector for Intelligent Healthcare Applications

Self-powered broadband photodetectors are pivotal for next-generation intelligent healthcare. Solution-processed mercury sulfide (HgS) is an attractive near-infrared absorber but is limited by interfacial instability, high defects, and sluggish response. Inspired by sulfur-mediated adhesion in Alhagi sparsifolia, a bioinspired interfacial engineering strategy employs an antimony sulfide (Sb2S3) interlayer to construct a bidirectional chemical bonding network. The Sb2S3 interlayer simultaneously forms Sb–O bonds with fluorine-doped tin oxide (FTO) substrates and Sb–S/Hg–S bonds with the HgS layer, thereby reinforcing interfacial adhesion, passivating coordination-unsaturated defect states, and establishing a type-II heterojunction with a strong built-in electric field. The resulting Sb2S3/HgS photodetector exhibits self-powered operation, broadband sensitivity spanning the visible to near-infrared region (642–1550 nm), an ultrafast response time of 2.47 ms, a detectivity up to 1.7 × 10^11 Jones, and retaining nearly constant photocurrent over 5000 continuous on-off switching cycles as well as prolonged air exposure. Beyond device-level performance, we demonstrate its utility in intelligent healthcare scenarios, including machine-learning-assisted liquid drug identification, binary-coded optical wireless communication, and high-fidelity photoplethysmography monitoring. This work establishes biomimetic bidirectional bonding as a generalizable paradigm for stabilizing solution-processed chalcogenide optoelectronics and accelerates the integration of self-powered broadband photodetectors into intelligent healthcare systems.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4322-4

Ultrafast Scintillation Enabled by Exciton Localization in High-Entropy Fluoride Crystals

Ultrafast scintillators with low-nanosecond emission are essential for next-generation high-rate X-ray and particle imaging. Although Ce3+-activated scintillators inherently exhibit fast response characteristics, conventional Ce3+-doped hosts rarely achieve low-nanosecond ultrafast decay. Here, we report a high-entropy fluoride scintillator (HEFS), Ce:LaGdCaSrBaF12 (Ce:LGCSB), in the form of bulk single crystals. The severe lattice distortion arising from multi-cation disorder induces exciton localization and effectively suppresses exciton diffusion. Through the rapid relaxation of localized excitons, the high-entropy Ce:LGCSB single crystals deliver a decay time of 1.23 ns with a 94.6% fast-component contribution and without any noticeable slow component. Through first-principles calculations, spectroscopic characterization, and transient dynamics analysis, we reveal that the ultrafast response originates from accelerated Frenkel exciton (FE) recombination enabled by the high-entropy environment. This work establishes entropy-engineered fluorides as promising ultrafast scintillator platforms and proposes a general strategy for extending sluggish diffusion effects to the excitonic scale, offering new opportunities for improving scintillation timing performance.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4203-7

Novel Cross-Linkable Blue Light Emitting Material and Its High Stability OLEDs by Solution Process

The solution process holds great promise for organic light-emitting diode (OLED) fabrication owing to its minimal material loss, simple processing and low equipment investment. However, solution-processed blue OLEDs still face the challenges of low electroluminescence efficiency and poor working stability. In this study, two new cross-linkable blue light-emitting molecules, v-4CzBn and v-5CzBn, were synthesized. They featured a multicarbazole-substituted benzonitrile donor–acceptor structure as the emitting core, with two vinyl phenyl units on the carbazole rings serving as cross-linking groups. A singlet–triplet energy gap of ΔEST ≤ 0.10 eV and a high reverse intersystem crossing rate (kRISC > 10^6 s−1) were achieved because the three-dimensionally confined covalent network structure formed through a thermal cross-linking reaction limited intramolecular motions and vibrational relaxations of luminescent units. Moreover, this structure suppressed irreversible morphological changes and structural deterioration of light-emitting units due to aggregation or crystallization, improving the light-emitting performance of the device. Nondoped solution-processed OLEDs with the structure of ITO/PEDOT:PSS/TFB/S-4CzBn/TPBi/LiF/Al exhibited blue emission with a peak at 488 nm, achieving a maximum external quantum efficiency of 12.01%, a maximum luminance of 11,141.15 cd m−2, and a T50 lifetime of 1375.66 h@100 cd m−2. This result represents the longest operational lifetime reported to date for solution-process devices with cross-linked emitting layers.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3607-9

Designing Hierarchically b-Axis Shortening for Enhanced Diffusion and Coke Accommodation in Efficient Methanol to Olefins

Enhancing light olefin selectivity and extending catalytic durability remain critical challenges for ZSM-5 zeolites in methanol-to-olefins (MTO) conversion, primarily due to inherent diffusion restrictions along the MFI b-axis and poor coke accommodation. Here, we report a hierarchically single-crystalline ZSM-5 sheet architecture featuring interconnected multiscale porosity and a remarkably reduced b-axis thickness (<50 nm), quantitatively verified by three-dimensional electron tomography. Real-time confocal laser scanning microscopy tracking demonstrated significantly enhanced molecular diffusivity compared to conventional micron-sized ZSM-5 (Micro-ZSM-5). This engineered structure distributes abundant aluminum sites on highly accessible diffusion pathways, achieving an enlarged coke accommodation of 16.31 wt% with a coke deposition rate of 0.59 mg g−1 h−1, only one third of that in Micro-ZSM-5. In continuous MTO operation, the hierarchical ZSM-5 sheet (Hier-ZSM-5-S) maintained an average ethylene and propene selectivity of 63.5% for 22.2 hours (WHSV = 3.6 h−1, T = 480°C), which was 19% higher and 6.5 times longer than Micro-ZSM-5, respectively. This hierarchically shortened b-axis structure establishes a generalizable paradigm for enhanced diffusion and coke accommodation in precisely designed pore systems, applicable to various reactions.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4183-3

Ultra-sensitive ultraviolet organic photodetectors enabled by an expanded spectral window for health monitoring

Excessive ultraviolet (UV) radiation poses significant risks to human health, necessitating highly sensitive detection systems. Organic photodetectors (OPDs) offer high sensitivity and tunable spectral response, but their UV performance is constrained by conventional glass/indium tin oxide (ITO) substrates and electrodes, and insufficient photoactive layer responsivity. Here, we report high-performance UV-OPDs achieved through UV-transparent window and active-layer optimization. Replacing glass/ITO with a UV-transparent window comprising a quartz substrate and PH1000 electrode enhances UV transmittance. Integrating the high UV-responsive blend PM6:Y6:PC71BM as the active layer, the optimal ternary UV-OPD exhibits external quantum efficiency (EQE) exceeding 53% across 280–400 nm, with a peak EQE of 78.29% and responsivity of 214.68 mA/W at 340 nm, alongside a rapid response time of 2.6/2.1 μs. This performance represents the best combination of responsivity and response time reported to date in the UV region. We demonstrate the potential of these UV-OPDs for outdoor real-time UV monitoring. This work presents a promising strategy for developing high-performance UV-OPDs through transparent substrate and electrode engineering, and active-layer optimization.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4197-4

Engineering High-Efficiency Anthracene-Based Deep-Blue Emitters via Spirofluorene Bridge-Mediated Electronic Structure Modulation

Deep-blue organic light-emitting diodes (OLEDs) remain the most challenging primary-color emitters due to stringent exciton energy requirements. We strategically designed two innovative deep-blue emitters, SCZ-4AnCN and STPA-4AnCN, via systematic functionalization of an anthracene core with arylamino-decorated spirofluorene donors and cyano-substituted phenyl acceptors. Comprehensive theoretical and experimental analyses demonstrate that these spirofluorene-anthracene hybrids adopt precisely engineered distorted configurations, effectively suppressing detrimental intermolecular π–π stacking in condensed phases. The sp3-hybridized bridgehead carbons in spirofluorene units play a pivotal role by simultaneously restricting π-conjugation extension and fine-tuning donor–acceptor interactions, thereby stabilizing the lowest excited singlet (S1) state with dominant local excitation (LE) character. This molecular engineering yields exceptional deep-blue emission with remarkable efficiency. Notably, the materials exhibit unique high-lying reverse intersystem crossing (hRISC) behavior, enabling efficient triplet harvesting. Optimized doped devices incorporating SCZ-4AnCN achieve outstanding performance, including a maximum external quantum efficiency (EQE_max) exceeding 10% and CIE coordinates (0.154, 0.052) approaching the BT.2020 blue standard. Nondoped devices maintain impressive performance with an EQE_max of 7.51% and superior operational stability, demonstrating less than 10% efficiency roll-off at 1000 cd m−2. This work validates anthracene-based molecular architectures for deep-blue electroluminescence and establishes a transformative design paradigm for next-generation OLED emitters.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4213-x

Bioelectric Responsive Nanozymes for Catalytic Control of Lipid Peroxyl Radicals

Lipid peroxyl radicals (ROO·) are terminal propagating species in lipid peroxidation, driving oxidative damage in neurological disorders. Their prolonged lifetime and rapid diffusion within lipid membranes render them difficult to neutralize. Here, we report a bioelectric-responsive TEMPO-doped polydopamine (PDA@TEMPO) nanozyme that sustains catalytic interception of ROO· radicals under persistent oxidative stress. By coupling a PDA redox reservoir with TEMPO catalytic centers, the nanozyme establishes a self-regenerating radical-neutralization cycle via proton-coupled electron transfer (PCET). The π-conjugated framework facilitates charge migration and enables an electric-field-enhanced antioxidant response. In a seizure model, the nanozyme dynamically responds to bioelectric fluctuations, accelerating radical interception and alleviating oxidative stress in neural microenvironments. These findings establish bioelectric-coupled nanozymes as a general strategy for catalytic and sustained regulation of oxidative stress in neural microenvironments, providing a potential therapeutic approach for neurological disorders.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4217-y

Incorporating Triphenylamine Chromophores into Covalent Triazine Frameworks for Effective Photocatalytic Aerobic Oxidations

Rational design and construction of effective photocatalysts is a promising way for green and sustainable chemistry, but still a great challenge. Herein, taking triphenylamine-containing aldehydes as reactants, two covalent triazine frameworks (CTFs), tris(4-formylphenyl)amine (TPA)-CTF and tris(4-formylbiphenyl)amine (TBPA)-CTF, were rationally constructed. The strong electron donor property of the triphenylamine moieties derived from the initial reactants and the strong electron acceptor nature of the in-situ formed built-in triazine rings in CTFs endowed these robust triphenylamine-based CTFs with donor-acceptor (D-A) or donor-π-acceptor (D-π-A) structure features. Photocatalytic experiments revealed that, compared with the controlled phenyl analogue CTF, 1,3,5-tri(p-formylphenyl)benzene (TFPB)-CTF, both of the triphenylamine-based CTFs exhibited superior photocatalytic activity not only in photocatalytic hydrogen peroxide generation, but also in photocatalytic aerobic oxidations of diverse organic substrates. Theoretical studies further confirmed that their enhanced photocatalytic performance should be attributed to their unique D-A or D-π-A features in the constructed triphenylamine-based CTFs. This work successfully demonstrated that rational selection of reactants containing electron donor moieties to construct CTFs should be a reliable way for the construction of effective photocatalysts for photocatalytic oxidation reactions.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3844-9

Electrospun MOFs-Based Nanofibrous Membranes for Water and Air Purification: A Review

Global water scarcity and atmospheric pollution necessitate advanced remediation materials. Metal-organic frameworks (MOFs) offer high specific surface areas (up to 7000 m2 g−1), tunable pore sizes (0.3–4.0 nm), and abundant active sites, yet their application is hindered by agglomeration, poor recoverability, and structural fragility. Electrospinning embeds MOFs into polymeric nanofibers, yielding freestanding membranes with three-dimensionally interconnected porous networks that enhance dispersion, operational stability, and handling. This review systematically examines design strategies, mechanistic insights, and performance of electrospun MOF-based nanofibrous membranes for water purification (pharmaceutical residues, heavy metal ions, synthetic dyes, emulsified oils) and air purification (ultrafine particulate matter, volatile organic compounds), benchmarking against conventional counterparts. Recent progress in multifunctional synergistic systems, stimuli-responsive membranes, and enhanced environmental resistance is highlighted. Persistent challenges and future research directions are discussed to guide rational design of advanced MOF-integrated membrane technologies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3775-3

Orchestrated Multi-Physics Field-Engineering Toward Valorized C2+ Chemicals from CO2/CH4

The urgent imperative for carbon-neutral chemical production has accelerated the development of solar-driven catalytic technologies that convert abundant C1 feedstocks (CO2 and CH4) into value-added C2+ molecules. Standalone photocatalysis remains constrained by rapid charge-carrier recombination and poor C–C coupling selectivity. This review critically examines multi-field-coupled catalysis—a transformative paradigm synergistically integrating solar energy with auxiliary thermal, electric, and magnetic fields. Through mechanistic dissection of photothermal, photoelectrochemical, and photomagnetic field cooperativities, it is summarized that thermal gradients attenuate phonon scattering to enhance charge-carrier drift mobility while vibrationally stabilizing reactive intermediates, electric potentials drive vectorial charge transport via Coulomb-force-directed separation and band alignment, and magnetic fields modulate spin-selective electron transfer through Zeeman splitting-mediated polarization to boost reaction specificity. This synergistic multi-field integration circumvents intrinsic limitations of single-mode photocatalysis by collectively reconfiguring reaction coordinates for selective C–C coupling. We further address persistent challenges in resolving ultrafast interfacial charge-transfer dynamics, scaling integrated field reactors for industrial deployment, and advancing in situ operando characterization of multiscale processes. Strategic research priorities are proposed to advance sustainable multi-field-coupled catalytic production of fuels and platform chemicals.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4153-2

Cl−-Driven Pathway Switching Enables Efficient Industrial-Current Seawater Oxidation on Dual-Atom Catalysts

Direct seawater electrolysis offers a promising route to green hydrogen production, circumventing freshwater scarcity. However, the presence of chloride ions (Cl−) poses severe challenges, including competing chlorine evolution reaction (CER) and corrosion of anode catalysts. Here, we report a dual-atom catalyst design, RuCr-Ni3P, where Ru atoms with strong chloride affinity and Cr atoms as Lewis acid centers are co-doped into a nickel phosphide matrix. This catalyst exhibits outstanding oxygen evolution reaction (OER) activity and selectivity in alkaline seawater, achieving stable operation for over 4000 hours at industrially relevant current densities. Mechanistic studies reveal that Cl− ions are selectively captured by Ru sites, forming a dynamic Ru–Cl coordination motif that electronically modulates adjacent Ni centers, promoting the formation of high-valent Ni>3+ species. This switches the OER pathway from the lattice oxygen mechanism (LOM) to the more efficient adsorbate evolution mechanism (AEM). Concurrently, Cr sites facilitate the formation of Cr–OH species, creating a localized alkaline microenvironment that further enhances OER kinetics. This dual-site synergistic mechanism transforms Cl− from a detrimental impurity into a beneficial chemical switch, concurrently enhancing both activity and stability. Our findings provide a paradigm shift in seawater electrolysis catalyst design, turning a longstanding challenge into an opportunity for efficient and durable hydrogen production.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3828-y

Strategic Inner/Outer Side-Chain Tuning for High-Efficiency Green-Solvent-Processed Organic Solar Cells

The rapid development of halogen-free solvent-processed organic solar cells (OSCs) has been enabled by side-chain modification on small molecular acceptors, yet the structure-property relationship between inner/outer chain lengths and device performance remains unclear. This study systematically investigates five non-fullerene acceptors (NFAs) with varied side-chain positions and architectures, clarifying the effects of inner versus outer modifications on energy level distribution, film morphology, and carrier dynamics. Notably, longer alkyl chains are not always superior; excessive solubility reduces molecular packing order. The optimized PM6:BTP-TO12 blend achieves a power conversion efficiency (PCE) of 18.2%. Furthermore, ternary OSCs incorporating BTP-TO12 as a guest material reach a remarkable PCE of 19.5%, enhancing the performance of L8-BO-based devices processed with green solvents. This improvement is attributed to the low energy loss and well-controlled aggregation behavior of BTP-TO12 in environmentally friendly toluene. These findings establish a design guideline for side-chain engineering in green-solvent-processed OSCs, achieving state-of-the-art performance and advancing scalable, eco-compatible photovoltaic technologies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3629-3

Surface Modification of Metal Nanostructures Toward Electrically Pumped Perovskite Microlasers

Electrically pumped lasers with reduced physical dimensions are critical for future optical information processing, storage, and photonic integrated circuits. However, electrical injection in perovskite lasers faces challenges including material instability, non-radiative losses, and Joule heating. Here, we demonstrate an ultralow-threshold perovskite microlaser decorated with gold nanoparticles (AuNPs), enabling simultaneous optical pumping and current injection at ambient temperature. The lasing threshold is reduced to 8.6 μJ/cm², approximately 44% lower than that of pristine devices (15.3 μJ/cm²). The AuNPs, with optimized size, enhance both lasing performance and electrical properties, achieving a current injection density of 2.98 kA/cm². AuNPs accelerate hot-carrier cooling, reducing non-radiative recombination and mitigating Joule heating. The threshold decreases progressively with increasing electrical assist fraction. Stability tests confirm excellent resistance to aging and humidity, with stable lasing output under co-excitation in ambient air. This work underscores the feasibility of electrically driven perovskite microlasers, offering a pathway toward electrically pumped microlaser diodes.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3608-8

Enhanced electron delocalization in potassium poly(heptazine imide) triggered by indium sites and nitrogen defects promotes highly efficient H2O2 photosynthesis

Polymeric carbon nitride (PCN) is a promising photocatalyst for H2O2 production due to its visible-light response, low cost, and high selectivity for the two-electron oxygen reduction reaction (ORR). However, its H2O2 yield is limited by narrow light absorption, low charge separation efficiency, and insufficient active sites. Here, crystalline poly(heptazine imide) (PHI)-based carbon nitride with highly dispersed In sites and N defects was prepared via an ionothermal method using LiCl/KCl molten salts. The large π-conjugated system and N defects enhance visible-light harvesting. Remaining K+ ions in nitrogen cavities act as interlayer electron channels, while N defects induce asymmetric charge distribution on the heptazine network, promoting interlayer and in-plane charge separation and transfer. In sites accelerate charge transfer dynamics and serve as active sites for ORR. The synergistic effect of metal modification and defect engineering boosts electron delocalization, significantly improving photocatalytic activity. The H2O2 production rate of 10InPHI reaches 15.3 mmol g−1 h−1 via a two-step single-electron ORR pathway, underscoring the potential of modified carbon nitride for efficient H2O2 photosynthesis.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3700-7

Accelerated oxygen activation over uranyl decorated covalent organic framework for universally promoted H2O2 photosynthesis

Photocatalytic synthesis has been considered a promising technology for solar-to-chemicals conversion. Here, a series of novel photocatalysts was synthesized by decorating uranyl sites on imine-based covalent organic frameworks (i-COF) and proved functioning for the uniformly boosted H2O2 production by 1.6–10.1 folds compared with the bare i-COFs in a wide pH range from 2 to 11. Typically, an optimal H2O2 production rate of 1435.9 μmol g−1 h−1, i.e., 28.72 mmol g(U)−1 h−1, was realized over uranyl decorated TTa-COFs under visible light. Systematic investigations reveal that the universally and remarkably promoted performance is attributed to the outstanding electron-transfer ability, accelerated activation of molecular oxygen and favored formation of ·O2− and *OOH as the key intermediate by virtue of the decorated uranyl ions; thus the two-step single-electron oxygen reduction reaction (ORR) for H2O2 photo-generation is significantly facilitated. This work paves a new way for the uranyl-decorated COFs as a novel photocatalyst and provides in-depth insight to the reaction mechanism for photocatalytic H2O2 production.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3596-2

Pt-optimized AuAgCuPdPt high-entropy alloys for selective CO2 reduction and high-performance Zn-CO2 battery

High-entropy alloys (HEAs) have shown great promise in the CO2 reduction reaction (CO2RR) due to their tunable composition and unique physical and chemical properties. However, the role of HEAs in CO2RR and the underlying reaction mechanism remain underexplored, particularly through in situ techniques. In this work, we investigate the mechanism of CO2 reduction on AuAgCuPdPt HEAs using in situ Raman spectroscopy and attenuated total reflectance Fourier-transform infrared (ATR-FTIR) spectroscopy to reveal key intermediates and reaction pathways. Our results demonstrate that within the potential window of −0.2 to −0.7 V vs. reversible hydrogen electrode (RHE), the AuAgCuPdPt HEAs efficiently reduce CO2 to CO, achieving a Faradaic efficiency (FE) for CO greater than 90%, with a peak FE of 96.5% at −0.3 V vs. RHE. The CO2− intermediate was observed at low potentials, revealing the reaction pathway in the CO2 reduction process. Additionally, in situ ATR-FTIR results suggest that the introduction of an appropriate amount of Pt metal not only promotes water dissociation to generate protonic hydrogen, but also facilitates the desorption of *CO intermediates. The kinetic isotope effect of hydrogen-deuterium (H-D) confirms that water dissociation acts as a key proton donor in CO2RR. Furthermore, the catalyst of AuAgCuPdPt HEAs was applied as cathodes in a Zn-CO2 battery, achieving 90.23% FE for CO and a power density of 3.474 mW cm−2. This study provides new insights into the mechanistic understanding of CO2 reduction and underscores the importance of in situ spectroscopic techniques for advancing the design of efficient electrocatalysts for CO2 conversion.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3848-7

Exciton Tuning and Charge Steering in Donor-Acceptor Covalent Triazine Frameworks toward Boosted Photocatalytic Oxidation

Conventional heterogeneous photocatalysts often suffer from insufficient light absorption, rapid charge recombination, and a lack of specific reactive sites for efficient photocatalytic oxidation. To overcome these limitations, we propose a molecular polarization engineering approach utilizing structurally well-defined donor (D)-acceptor (A) covalent triazine frameworks (CTFs). The construction of dipole-induced built-in electric fields within the D-A-structured CTFs enables enhanced exciton dissociation and facilitates directional charge transfer. Specifically, the asymmetric A1-D-A2 moiety enhances molecular polarization in the dual-acceptor system CTF-TBT (A1-D-A2), enabling efficient charge separation through multiple electron-withdrawing units. This structural design promotes directional electron transfer toward the secondary acceptor (benzothiazole, A2), while simultaneously concentrating holes on the donor unit. Consequently, the A2 moiety acts as a site for efficient O2 activation via electron accumulation, whereas the highly oxidized donor unit provides strongly positive holes (h+) that facilitate substrate oxidation. Experimental and DFT calculation results confirm that CTF-TBT demonstrates highly enhanced photocatalytic oxidation performance, which can be attributed to its multi-channel charge separation mechanism and spatially separated redox-active sites. This study highlights the effectiveness of molecular dipole engineering in designing heterogeneous photocatalysts with controlled charge transfer pathways and improved redox capabilities. The proposed design principles provide a universal approach for promoting solar-driven chemical synthesis applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3664-x

Enhancing interfacial bonding and compositional synergy in ANF-PPy/Ag-MXene/ANF-PPy multilayer heterostructures for efficient electromagnetic interference shielding and infrared thermal camouflage

The proliferation of electronic devices and wireless communications has escalated the demand for materials that simultaneously provide electromagnetic interference (EMI) shielding and infrared (IR) thermal camouflage, a combination critical for military and civilian applications. Traditional metallic shields suffer from high density, poor processability, and cost, while polymer-based alternatives often lack sufficient shielding effectiveness and environmental stability. Here, we report a multilayer composite film fabricated via layer-by-layer vacuum filtration and hot-pressing, integrating modified aramid nanofibers (ANF) and MXene (Ti3C2Tx) nanosheets. The film architecture comprises ANF-polypyrrole (ANF-PPy) as the matrix and Ag-MXene as the functional filler, with in-situ grown Ag nanoparticles intercalating between MXene layers to enhance interlayer spacing and electromagnetic wave scattering. At a thickness of only 33 μm, the film achieves an average EMI shielding effectiveness (SE) of 66.75 dB and a specific shielding effectiveness (SSE/t) of 38432.54 dB cm2 g−1. The multilayer structure promotes multiple internal reflections and interfacial polarization losses, while the tight integration ensures high IR reflectivity. This work establishes a foundation for developing multifunctional protective materials with dual EMI shielding and IR camouflage capabilities, addressing the critical bottleneck of simultaneous performance in ultrathin, flexible formats.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3539-5

Centrifugal casting-enabled highly oriented MXene-based layered films with dual-shielding against electromagnetic wave and infrared radiation

MXene-based layered films are promising for electromagnetic interference (EMI) shielding, yet achieving highly ordered structures in scalable production remains challenging. Here, we report a facile centrifugal casting method for fabricating MXene/polyvinyl alcohol (MXene/PVA) films with highly oriented and compact layered structures. During centrifugal casting, the viscous fluid experiences strong shear and centrifugal forces along tangential and normal directions, respectively, inducing compact and oriented arrangement of MXene nanosheets. Consequently, the Herman's orientation factor increases from 0.681 to 0.794 as rotation rate rises from 0 to 4000 r/min. Accordingly, tensile strength and toughness improve from 55.2 to 191.1 MPa and from ~0.8 to 2.5 MJ/m³, respectively. The highly oriented and compact layered structure with ultrathin thickness (~8 μm) enables a high absolute electromagnetic shielding effectiveness (SSE/t) of 21029 dB cm²/g. Moreover, increased orientation reduces infrared emissivity to 0.248, endowing the film with excellent thermal camouflage capability. This work presents an effective strategy for constructing high-performance MXene-based layered films.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3547-7

Three birds with one stone: dual-interfaces and bulk co-passivation enable >21% efficiency of CsPbI3 solar cells with VOC of 1.27 V

Inorganic perovskite solar cells (IPSCs) have attracted significant attention due to their excellent light and thermal stability and potential in tandem applications. However, their efficiency and stability are often limited by residual lattice stress and defects at interfaces and within the bulk, causing severe nonradiative recombination. Here, we introduce a zero-dimensional supramolecular complex, (ETP)2SbCl5, as a dual-interface and bulk modifier to regulate CsPbI3 film growth. The modifier exhibits spatial segregation: ETP+ cations anchor at the buried interface, passivating defects on TiO2 and perovskite surfaces; Sb3+ and Cl− ions diffuse into the bulk during annealing, relieving residual stress; and Cl− accumulates on the top surface, passivating cation defects. Consequently, the modified CsPbI3 solar cell achieves a power conversion efficiency (PCE) of 21.71% and an open-circuit voltage (VOC) of 1.27 V, retaining 97.4% of initial efficiency after 500 h of maximum power point (MPP) tracking. This work demonstrates a synergistic strategy to simultaneously address interfacial and bulk defects, advancing high-performance and stable inorganic photovoltaics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3793-9

High-efficiency hybrid planar/bulk heterojunction organic solar cells

Organic solar cells (OSCs) require both a high donor/acceptor (D/A) interfacial area for efficient exciton dissociation and a vertically phase-separated morphology for efficient charge transport. Traditional bulk heterojunctions (BHJs) provide large interfacial areas but lack vertical phase separation, while quasi-planar heterojunctions (QPHJs) achieve vertical separation at the cost of reduced interfacial contact. Here, we introduce an in situ pore-forming strategy for polymer thin films. By incorporating an excess of additives as pore-forming agents into the donor layer, a nanoporous film with a fibrous nano-network is generated. Subsequent deposition of acceptor molecules fills these nanopores, creating a hybrid planar/bulk heterojunction (HP/BHJ) that synergizes the strengths of both architectures. This design enhances performance by: (1) increasing the D/A interfacial area via nanopores, forming a three-dimensional network that accelerates exciton dissociation; (2) promoting close molecular packing that minimizes carrier recombination and establishes low-defect charge transport channels; and (3) fostering vertical phase separation through layer-by-layer deposition. Binary OSCs fabricated with this strategy achieve a power conversion efficiency (PCE) of 20.0%, surpassing conventional BHJ and QPHJ devices by a significant margin. The approach demonstrates general applicability, with analogous improvements observed in D18/BTP-eC9-4F and PM6/L8-BO systems, underscoring its potential for advancing OSC performance.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3585-1

Quasi-metal 2D Ag2Te nanosheets for high performance surface-enhanced Raman scattering detection

Semiconductor-based surface-enhanced Raman scattering (SERS) substrates have attracted significant attention due to their high uniformity, reproducibility, stability, and cost-effectiveness. However, the Raman enhancement in semiconductors primarily relies on the chemical mechanism (CM), which typically results in a lower enhancement capability compared to traditional noble metals. In this study, we developed a novel two-dimensional (2D) SERS substrate, Ag2Te nanosheets (NSs), synthesized through a simple one-step redox reaction utilizing 2D Te NSs as the template. The 2D Ag2Te NSs not only exhibit strong interfacial interactions with molecules, thereby supporting the CM, but also possess quasi-metallic properties with low resistivity (2.8 × 10−4 Ω cm) and high density of free electrons (4.15 × 10^22 cm−3), giving rise to a significant visible-region surface plasmon resonance (SPR) band and contributing to enormous electromagnetic mechanism (EM). By synergizing CM and EM, the 2D Ag2Te NSs SERS substrate achieved an ultra-low limit of detection (LOD) of 10−10 M with an enhancement factor (EF) of 2.6 × 10^7 for methylene blue (MB), outperforming most semiconductors, even rivaling noble metals. The quasi-metallic properties of 2D Ag2Te NSs also benefit their sensitivity to multiple molecules. The accuracy and reliability were demonstrated in real-sample detections with recoveries of 91.5%–108.3% for various target molecules. These excellent performances, combined with remarkable cost-effectiveness, demonstrate the potential of 2D Ag2Te NSs as a practical SERS substrate with broad applicability. Furthermore, the inherent structural simplicity of these nanosheets creates significant opportunities for further sophisticated nanostructural engineering to advance the SERS performance in the future.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3615-1

LEGO-like Three-Dimensional Integrated Stretchable Electronics

Stretchable electronics are pivotal for bio-integrated devices, soft robotics, and wearables, yet their development is constrained by single-layer architectures that limit integration density and by mechanical mismatch between rigid components and soft substrates, which curtails service life. Here, we introduce a LEGO-like modular assembly strategy to construct multilayer three-dimensional (3D) stretchable electronics. Electronic components (ECs) and self-healing polyurethane (SPU) substrates patterned with liquid metal (LM) circuits serve as the modular blocks. This design simplifies fabrication and markedly enhances 3D integration density. The combination of LM circuits and self-healing elastic substrates enables devices to withstand diverse deformations and to autonomously heal after mechanical damage. Notably, the devices can undergo multiple recycling and reuse cycles without significant performance loss. This methodology offers a new paradigm for advanced flexible electronics, addressing critical bottlenecks in integration density, mechanical robustness, and sustainability.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3553-7

Wearable Interactive System with Uncoded Gesture Recognition Logic Enabled by Deep Learning

Gesture interaction has emerged as a highly effective interface for intelligent human-computer interaction, attributed to its intuitive interaction modality and multi-dimensional control capabilities. However, traditional gesture interaction devices often depend on predefined encoding rules, which substantially limit interaction efficiency and degrade user experience. This study introduces an innovative intelligent finger ring interaction system based on a triboelectric nanogenerator utilizing PDMS/SrTiO3 composite thin film (PS-TENG). The system maps freehand writing gestures directly to textual information input, thereby eliminating the need for complex gesture encoding schemes and offering a user-friendly, low-learning-curve input method. By integrating a deep learning model, the system achieves recognition accuracies of 98.21% for English letters, 96.87% for Arabic numerals, and 96.44% for Chinese characters. Furthermore, it supports secure and encrypted data transmission and enables wireless interaction for gaming control. These findings indicate that the intelligent finger ring interaction system possesses significant potential for practical applications in information input and wireless control.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3617-x

Magnetoelectric-bioactive dual functions of MXene regulate macrophage M1-M2 sequential polarization to promote healing of infected wound

Macrophages are pivotal in infection resolution and tissue repair via dynamic M1-to-M2 phenotypic polarization. Although various nano-biomaterials can modulate macrophage polarization, achieving sequential M1-to-M2 transition using a single nanoformulation remains challenging. Here, we propose a strategy employing transition metal carbide/nitride (MXene) nanosheets, internalized by macrophages, as the sole regulator to induce sequential polarization. Under a rotating magnetic field, the high electrical conductivity and magnetoelectric activity of endocytosed MXene generate electrical signals and reactive oxygen species (ROS), driving M1 polarization. Upon magnetic field removal, the inherent bioactivity of MXene facilitates repolarization to the M2 phenotype. Mechanistically, this transition involves inhibition of the NF-κB signaling pathway and activation of the JAK-STAT signaling pathway. In vivo, MXene nanosheets under on-off rotating magnetic field stimulation enabled sequential M1-to-M2 polarization, promoting bacterial clearance and tissue regeneration in infected wounds. This two-step sequential strategy targeting macrophages offers a promising therapeutic approach for infected wound healing.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3644-9

A hydrogel–textile composite with synapse-inspired ionic multimodal sensing

Flexible and perceptive sensors represent the pinnacle of wearable technology; nevertheless, most current hydrogel-based sensors encounter difficulties in concurrently achieving mechanical durability, biocompatibility, high sensitivity, and scalability. This work introduces an innovative multimodal hydrogel–textile composite sensor (WPU–ChCl hydrogel) developed via free radical polymerization of acrylamide, integrating choline chloride (ChCl), EMIM TFSI ionic liquid, and waterborne polyurethane (WPU) to overcome existing constraints. The resultant hydrogel demonstrates a synergistic network of covalent and dynamic non-covalent connections, with remarkable stretchability (~900%), mechanical toughness (>250 kJ/m3), and ionic conductivity (9.2 mS/cm at 600% strain). Comprehensive morphological and chemical analysis validated uniform structure, increased segmental ordering, and improved heat stability. The hydrogel exhibited swift strain responsiveness (gauge factor = 7.23), quick response/recovery times (~108/114 ms), exceptional durability over 500 cycles, and enhanced self-healing and adherence to various surfaces. Integrated into textiles, the composite demonstrated exceptional real-time touch and motion detection capabilities and retained sensing accuracy after 20 wash cycles. Code transmission and machine learning-based high-accuracy gesture recognition (93.65%) were examples of advanced uses. The wireless-enabled system demonstrated efficacy in IoT-based health monitoring, soft robotics, and human–machine interactions, representing a substantial advancement in next-generation wearable electronics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3635-6

Beyond Li-O-Li Configuration in Oxygen Anionic Redox: Amorphization-Driven O-O Dimerization in Fluorinated Li-V-O Cathodes

Oxygen anionic redox (OAR) is pivotal for achieving extra lithium storage in high-energy-density Li-ion batteries, yet its activation and stabilization remain challenging. Traditionally, OAR is studied in crystalline layered oxides with ordered frameworks and transition metal (TM)-centered octahedral coordination, where the Li-O-Li configuration is considered a prerequisite for creating unhybridized O 2p states. However, recent findings indicate that the presence of unhybridized O 2p states, rather than a specific configuration, is essential for oxygen activation. This study reports a novel OAR mechanism in an amorphous Li-V-O-F cathode, operating at a moderate voltage of 4.1 V, distinct from conventional Li-O-Li configurations. The cathode, initially crystalline LiVO2.98F0.02 (F2), undergoes amorphization after the first charge-discharge cycle, as evidenced by ex situ XRD, HRTEM, and EXAFS. Resonant inelastic X-ray scattering (RIXS) and X-ray absorption spectroscopy (XAS) reveal that the initial charge involves O-O formal redox without oxidized oxygen features, indicating electron holes are accommodated via O-O interactions. Reversible OAR activity emerges in the second cycle, confirming O-O dimerization in the amorphous phase. Ab initio molecular dynamics (AIMD) simulations further elucidate the mechanism. This work challenges the conventional Li-O-Li paradigm and opens new avenues for designing high-capacity cathode materials through amorphization and tetrahedral coordination.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61075-X

Electrospinning of FeNiCo/carbon nanofibers: a new paradigm for lightweight microwave absorbers

The proliferation of electronic devices has intensified electromagnetic radiation pollution, necessitating advanced microwave absorption materials. This study presents the electrospinning fabrication of FeNiCo/carbon nanofiber (FeNiCo/CNF) composites with exceptional microwave absorption properties. The FeNiCo/CNFs achieved a minimum reflection loss (RLmin) of −55.5 dB at 14.24 GHz with an ultrathin matching thickness of only 1.6 mm. Microstructural analysis and electromagnetic parameter testing revealed that the superior absorption stems from the synergistic interaction between the carbon nanofiber network and FeNiCo alloy nanoparticles, which promotes multiple reflections and efficient energy dissipation. The precise control of coercivity and permeability via systematic modulation of magnetic metal composition enabled enhanced impedance matching and optimized magnetic-dielectric synergy. Furthermore, radar cross-section (RCS) simulations confirmed the material's capability to significantly reduce RCS values across a wide angular range, validating its potential for stealth technology applications. This work introduces a cost-effective and sustainable approach for developing ultralight, high-performance microwave absorbers, addressing the limitations of conventional materials such as high density and poor stability.

New Carbon Materials2026DOI: 10.1016/S1872-5805(25)61033-X

Engineered mesoporous carbon spheres with tailored pore structures for improved photothermal-chemotherapy

Carbon-based materials have gained significant attention in anticancer treatment due to their exceptional biocompatibility, yet critical challenges persist in establishing definitive correlations between their porous structures and functional performance. We report the use of a silica template to guide pore formation in the design of mesoporous carbon spheres (mC) with tailored pore structures for improved combined photothermal-chemotherapy. The mesopore size of mC was adjusted by kinetic control of resin polymerization and silica hydrolysis. Structural characterization showed that 4.4 nm mesopores enabled an exceptional gemcitabine loading of 228 mg g−1 and a sustained pH/thermal dual-responsive release with >70% drug release under near-infrared (NIR) irradiation. Finite element analysis demonstrated pore size-dependent heat transfer dynamics, with the improved mC achieving a superior photothermal conversion efficiency of 62% by a combination of N-doping and defect engineering. In vitro evaluations confirmed outstanding biocompatibility with >95% cell viability at 200 μg mL−1 and potent tumor suppression in pancreatic and biliary cancer models with an ~5% cell viability at 25 μg mL−1 where combined therapy showed a 3.7-fold increased cytotoxicity over monotherapy. The improved structure of mC facilitated cascade therapeutic effects with enhanced tumor permeability derived from NIR-triggered hyperthermia and prolonged therapeutic exposure due to pH-responsive drug release. This pore engineering strategy establishes a structure-function process for next-generation theranostic platforms, addressing the critical limitations of conventional pancreatic and biliary cancer therapies through spatiotemporal control of multimodal treatment.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3698-5

Identifying the Surface Dynamic Evolution of Electrocatalysts during Oxygen Evolution Reaction by In Situ Techniques

The oxygen evolution reaction (OER) is a critical bottleneck in next-generation sustainable energy systems due to its sluggish kinetics. Developing cost-effective, high-efficiency electrocatalysts requires understanding the dynamic structural evolution at electrode-electrolyte interfaces under operating conditions. In situ techniques are invaluable for identifying active centers and monitoring key intermediates. This review comprehensively summarizes recent advances in cutting-edge in situ methods for characterizing OER electrocatalyst structure evolution. It provides a brief overview of active motifs and robust structures using multiple in situ correlative techniques, establishing essential structure-performance relationships and updating mechanistic understanding at atomic scale under realistic conditions. Key challenges and perspectives are highlighted to promote rational design of promising electrocatalysts for efficient oxygen-associated electrocatalysis and electrosynthesis.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3432-8

Correction to: Crystal Defects Engineering of BiOI Elevated Photocatalytic CO2 to C2 Conversion Performance

This correction addresses an error in the labeling of author affiliations in the original publication (Sci China Mater, 2025, 68: 1561, DOI: 10.1007/s40843-024-3290-9). The corrected affiliations are as follows: Fuxia Huang, Feng Wang, Ya Liu, and Liejin Guo are affiliated with the International Research Center for Renewable Energy, State Key Laboratory of Multiphase Flow in Power Engineering, Xi'an Jiaotong University, Xi'an 710049, China. Yifei Liu is affiliated with the School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China. The correction was made upon the request of the authors and with approval from the respective institutions. The original article focused on crystal defects engineering of BiOI to enhance photocatalytic CO2 reduction to C2 products, a critical area for sustainable fuel synthesis. This correction ensures accurate attribution and institutional recognition, which is essential for research integrity and reproducibility. No changes were made to the scientific content or conclusions of the original study.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3648-2

Transient Energy Storage Devices for Implantable Medical Electronics

Transient energy storage devices represent an emerging class of biodegradable power systems that provide temporary energy for implantable medical electronics before safely degrading in vivo. From early transient primary batteries to contemporary rechargeable batteries integrated with wireless charging systems, these devices have evolved to enable stable prolonged power supply. Through rational transient design and structural engineering, they achieve desirable electrochemical performance, tunable degradation rates, and mechanical compatibility with soft, irregular, and dynamic biological tissues. This work provides a critical review of state-of-the-art transient energy storage devices, including transient primary batteries, transient secondary batteries, and transient supercapacitors, with emphasis on their electrodes, electrolytes, encapsulation materials, fabrication processes, and applications. We critically analyze material selection strategies, transient design principles, and architecture design for various transient batteries and capacitors. Finally, we discuss existing challenges and outline future directions to guide the clinical translation of biodegradable power solutions for biomedical implants.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3575-4

Dual-mode α-FAPbI3 Perovskite Memristors with Volatile and Nonvolatile Switching for Neuromorphic Computing and Handwritten Digit Recognition

Halide perovskite memristors, known for their ion mobility, have emerged as strong candidates for computational units in next-generation memory and neuromorphic computing systems. Nevertheless, most memristors are limited to operating in a single mode, either resistive switching or threshold switching. In this work, we overcome this limitation by developing dual-mode α-formamidinium lead triiodide (α-FAPbI3) perovskite memristors with switchable volatile/nonvolatile states, enabled by engineered SnO2 electron transport layers (ETLs). Through molecular interface optimization using 3-(N,N′-dimethylmyristylammonio) propanesulfonate (Z14) and 4,4′-(1,10-phenanthroline-3,8-diyl)bis(N,N′-bis(4-methoxyphen-yl)aniline) (PNL), we achieved exceptional device stability. Volatile devices exhibited >500 switching cycles, while nonvolatile devices surpassed 1000 cycles, both maintaining a high on/off ratio (~10^3). Beyond memory applications, these devices successfully emulated biological functionalities. The volatile mode replicated four key nociceptor characteristics (threshold, relaxation, sensitization, and no adaptation), while the nonvolatile mode demonstrated advanced synaptic plasticity, including paired-pulse facilitation (PPF) and spike-timing-dependent plasticity (STDP). Capitalizing on this dual-mode synergy, we constructed a spiking neural network (SNN) for handwritten digit recognition, achieving a 93% accuracy rate—a significant milestone for perovskite-based neuromorphic systems. This study not only provides a material-level strategy for multifunctional memristor design but also bridges the gap between biological sensing and artificial intelligence, paving the way for adaptive neuromorphic hardware.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3623-y

Enhancing efficiency and brightness of deep-blue phosphorescent OLED enabled by a narrowband Pt(II) emitter

Organic light-emitting diodes (OLEDs) are an advanced technology for full-color displays, yet the low efficiency of blue OLEDs remains a critical bottleneck. Here, we report a new strategy to design robust Pt(II) emitters with enhanced molecular rigidity and increased locally excited character. The resulting Pt(II) emitter exhibits an extremely narrow emission spectrum peaking at 458.6 nm with a full-width at half-maximum (FWHM) of 16.0 nm and a small Huang-Rhys factor of 0.278, together with a high photoluminescence quantum efficiency of 95%. When doped into an OLED, the device emits at 464 nm with high color purity (FWHM = 19 nm) and achieves high external quantum efficiencies (EQEs) of 32.6%, 29.4%, and 26.9% at luminances of 123, 1000, and 5000 cd/m2, respectively. Notably, the device attains a record-high maximum brightness of 84,895 cd/m2 among reported deep-blue OLEDs with Commission Internationale de l'Éclairage (CIE) y-coordinate < 0.15. This work demonstrates one of the highest-performing deep-blue OLEDs reported to date, addressing the dual challenges of efficiency and brightness in this spectral region.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3610-7

Dual-confinement of reconstructed covalent organic framework for enhanced CO2 electrolysis in acid

Electrochemical CO2 reduction reaction (CO2RR) offers an attractive route to produce value-added multicarbon (C2+) products, yet suffers from competing hydrogen evolution and monocarbon production. Here, we propose a dual-confinement effect on CO2 reactant and *CO intermediate, induced by tuning the pore configuration of reconstructed covalent organic frameworks (RC-COFs). The highly crystalline microporous RC-COF-1, when coated on a Cu electrode, enhances local CO2 concentration and restricts CO diffusion, thereby promoting C-C coupling. In acidic electrolyte, the RC-COF-1@Cu electrode achieves a maximum C2+ Faradaic efficiency (FE) of 67.0% at 500 mA cm−2, while maintaining a total carbon product FE above 90% across a broad current density range (100–500 mA cm−2). Experimental and theoretical analyses confirm that the ordered micropores of RC-COF-1 modulate reactant adsorption and intermediate diffusion, leading to improved C2+ selectivity. This work underscores the critical role of COF pore architecture in microenvironment engineering for heterogeneous catalysis.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3637-6

Hafnium Oxide-Based Ferroelectric Reconfigurable Optoelectronic Logic Gate Arrays for Optical Communication Encryption

Traditional optical fiber communication encryption methods lack sufficient dynamic adaptability and hardware flexibility, while reconfigurable logic gates can overcome this limitation, thereby significantly improving the flexibility of encryption systems. This study reports a reconfigurable optoelectronic logic gate (OELG) system based on hafnium-zirconium oxide (HZO) ferroelectric thin films. Through ultra-low temperature atomic layer deposition technique, the fabricated HZO thin films demonstrate an exceptional pyroelectric coefficient of 1835.91 μC m−2 K−1 and robust multi-level polarization stability, enabling efficient broadband photon-to-current conversion. By leveraging the pyroelectric effect and tunable polarization states, the OELG device achieves dynamic optical signal modulation and logic processing. The OELG device supports five fundamental logic operations (AND, OR, NAND, NOR, NOT) via electrical bias and polarization control, without requiring hardware modifications. The OELG device demonstrates stable performance over 10^9 cycles with no degradation, meeting practical application requirements. Furthermore, a convolutional neural network (CNN)-integrated image encryption-decryption framework was validated, achieving 95.01% recognition accuracy on decrypted data, while unauthorized decryption attempts resulted in significant feature loss. This study addresses security challenges in optical communication networks by proposing an innovative solution that integrates pyroelectric materials with reconfigurable logic gate technology, offering a new pathway to enhance physical-layer security.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3630-2

Dual-interface engineering strategy for optimizing carrier dynamics in perovskite-silicon tandem solar cells

This study demonstrates a dual-interface engineering approach for performance enhancement in perovskite-silicon tandem solar cells. By applying ethylenediamine dihydroiodide (EDAI2) to simultaneously modify both top and bottom interfaces of wide-bandgap perovskite layers, we achieve synergistic defect suppression and charge transport optimization. Time-resolved photoluminescence characterization reveals extended carrier lifetimes and improved spatial homogeneity in dual-modified perovskite films. The optimized single-junction wide-bandgap (>1.66 eV) perovskite solar cells attain a champion efficiency of 22.75% with enhanced operational stability. Implemented in perovskite-silicon tandem configuration, the devices achieve over 31% power conversion efficiency, validating the effectiveness of organic ligand-mediated dual-interface engineering in regulating carrier dynamics and advancing perovskite-based tandem photovoltaics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3666-2

Blue-emitting ionic multi-resonance emitters for efficient narrowband light-emitting electrochemical cells

Light-emitting electrochemical cells (LECs) are promising for low-cost, solution-processed display and lighting applications, yet achieving high efficiency and color purity remains challenging. Here, we report two ionic multi-resonance (MR) emitters with narrowband blue emission for high-color-purity LECs. By covalently bonding an imidazolium functional group into a boron/nitrogen-doped polycyclic skeleton, the emitters retain the narrowband emission and high photoluminescence quantum yield (PLQY) of the MR core while gaining ionic character. The design exploits two types of nitrogen atoms in the imidazolium unit: the pyrrolic N at the 1-position forms a para-B-π-N linkage, elevating excited-state energy levels and blue-shifting emission; the pyridinic N at the 3-position provides a quaternization site, yielding intrinsically ionic emitters compatible with ionic hosts. The emitters exhibit blue emission with narrow full-width at half-maximum of 26–27 nm and high PLQYs of 95%–97% in solid-state films. LECs based on these emitters achieve narrowband blue electroluminescence with CIE coordinates of (0.12, 0.26) and a maximum external quantum efficiency (EQE) of 4.6%, representing the first narrowband blue LECs based on intrinsically ionic MR emitters. This work demonstrates a viable molecular design strategy for high-color-purity LECs, addressing the long-standing trade-off between efficiency and color purity in this technology.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3658-1

Facile Synthesis of Efficient Blue-Light-Emitting Copper(I) Halide Hybrid Phosphors for Applications in pc-WLEDs and X-ray Imaging

Organic-inorganic hybrid copper(I) halide semiconductors have attracted extensive attention for applications in phosphor-converted white light-emitting diodes (pc-WLEDs), X-ray imaging, and photodetectors because of their superior photo/radioluminescence, structural diversity, and eco-friendliness. In previous work, a strategy combining coordinated anionic inorganic modules with cationic derivatives yielded highly efficient blue-emitting hybrids, but synthesis complexity limited practical use. Here, we report a facile, efficient, and rapid solution-based ultrasonic treatment method for synthesizing high-performance blue-emitting phosphors using inexpensive, commercially available tetraethylammonium halides (TEAX, X = Cl, Br, I). The synergistic interplay of ionic and covalent bonds in these compounds endows them with a high photoluminescence quantum yield (PLQY) of 70% and excellent stability. These materials exhibit thermally activated delayed fluorescence (TADF), delivering outstanding performance in pc-WLEDs and X-ray imaging. Their exceptional properties highlight significant potential for use in optoelectronic devices and X-ray scintillators. This work provides an important reference for rapid synthesis of high-performance copper(I) halide hybrid phosphors and paves the way for commercial application.