SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4363-6
Aqueous zinc-ion batteries (AZIBs) offer a compelling combination of high safety, environmental compatibility, and abundant zinc resources, positioning them as viable candidates for grid-scale energy storage. Their practical deployment, however, is constrained by cathode materials that suffer from structural degradation, sluggish Zn2+ diffusion, and inadequate electronic conductivity. Ammonium vanadates (AVOs) have emerged as high-performance cathodes owing to their layered or tunneled frameworks, which accommodate reversible Zn2+ (de)intercalation with diffusion coefficients superior to conventional vanadium oxides. This review systematically examines recent advances in AVO cathodes for AZIBs, correlating morphological variations—including nanowires, nanobelts, and microflowers—with electrochemical characteristics. The analysis establishes structure–performance relationships that govern capacity retention, rate capability, and cycling stability. Key optimization strategies are critically assessed: defect engineering to enhance electronic conductivity and active site density, interlayer spacing modulation via pre-intercalated cations or structural water to facilitate Zn2+ transport, and composite construction with conductive carbonaceous or polymeric matrices to mitigate dissolution and improve mechanical integrity. Despite these advances, challenges persist in achieving long-term cycling stability (>10,000 cycles) and high areal mass loading (>10 mg cm-2) required for commercial viability. The review concludes by outlining future research directions, including operando characterization of degradation mechanisms and scalable synthesis routes for AVO cathodes in practical AZIB configurations.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4500-8
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 Materials•2026•DOI: 10.1007/s40843-026-4419-1
Proton exchange membrane fuel cells (PEMFCs) fed with reformate hydrogen suffer severe anode poisoning by trace CO, necessitating high CO electrooxidation potentials that degrade performance and durability. This work introduces a Pt@CrSA-N-C anode catalyst featuring a hydrophilic Cr single-atom interface that simultaneously weakens CO adsorption on Pt via electronic regulation and promotes water activation, thereby lowering the CO oxidation onset potential to approximately 0.13 V vs. RHE. The onset potential was determined by two independent methods: the first potential at which the background-corrected current exceeds 0 mA cm-2 during CO oxidation reaction tests in a three-electrode system, and the potential at which the forward scan current exceeds the N2 background current in CO-stripping voltammetry. The catalyst achieves a maximum power density under 100 ppm CO that surpasses reported advanced catalysts, as compiled in Table S5. Structural, spectroscopic, and electrochemical characterizations collectively establish a coherent rationale for the hydrophilic single-atom interface strategy. This approach addresses the longstanding trade-off between CO tolerance and Pt utilization, offering a viable route for low-potential CO removal in practical PEMFC anodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4304-5
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 Materials•2026•DOI: 10.1007/s40843-026-4436-0
Microwave-absorbing materials (MAMs) deployed on naval vessels, aerospace vehicles, and critical electronic systems face coupled electromagnetic, marine salt-spray corrosion, and extreme-temperature loads that legacy single-function absorbers cannot withstand. This review consolidates progress on three environmentally adaptive MAM classes: corrosion-protective, anti-icing, and thermal-management absorbers. The electromagnetic loss and impedance-matching fundamentals are first established, then the synergistic mechanisms, design strategies, and characterization protocols for each class are examined against representative material systems and their measured performance. The analysis identifies a shared design logic—multiscale hierarchical architecture, interfacial polarization engineering, and multifunctional phase integration—while distinguishing the divergent protection mechanisms: barrier and passivation effects for corrosion, surface-energy and latent-heat regulation for anti-icing, and phonon–electron transport decoupling for thermal management. Persistent bottlenecks include the trade-off between impedance matching and protective-layer density, the absence of standardized coupled-field test protocols, and the scarcity of long-term salt-spray and thermal-cycling durability data. Future directions are delineated: intelligent self-adaptive absorbers, multiphysics-coupled simulation frameworks, and environmentally benign multifunctional integration. The review provides a theoretical and technical basis for the design, construction, and engineering scale-up of next-generation high-performance absorbers for aerospace, electronic, and marine equipment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4435-9
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 Materials•2026•DOI: 10.1007/s40843-026-4286-4
Multifunctional nanoplatforms capable of efficiently regulating both emerging and classical cell death mechanisms, thereby overcoming the adaptive resistance of malignant cells to certain cell death modalities, remain a significant challenge. Herein, we propose a new concept for the self-assembly of zinc-cystine coordination networks on curcumin (Cur) drug nanocrystals (DNCs) to construct Cur@PDA@GOx/Zn-Cys (CPGZC) nanoplatforms, enabling enhanced antitumor therapy through multicomponent synergistic modulation of both newly identified disulfidptosis and classical apoptosis. At tumor site, GOx-mediated glucose depletion reduces nicotinamide adenine dinucleotide phosphate (NADPH) levels, which can impair the intracellular conversion of cystine to cysteine. Combined with the exogenous cystine delivered by CPGZC NPs, rapid intracellular disulfide accumulation strongly activates disulfidptosis. Simultaneously, the reduction in NADPH levels inhibits GSH biosynthesis, augmenting the intracellular ROS levels elicited by Cur DNCs within the CPGZC nanoplatforms. Moreover, the elevated oxidative stress, in synergy with the excessive Zn2+ introduced, aggravates mitochondrial damage, thereby further amplifying apoptosis. Consequently, the synergistic modulation of disulfidptosis and apoptosis induces a potent antitumor response, as validated by comprehensive in vitro and in vivo investigations. This study opens new avenues for the development of multifunctional nanoplatforms for enhanced cancer therapy through the effective integration of both emerging and classical cell death mechanisms, which may serve as a promising strategy to advance our comprehension of synergistic utilization of various cell death mechanisms and combat with complex cancers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4312-8
Carbazole phosphonic acid-based self-assembled molecules (SAMs) serve as effective hole-selective contacts in organic solar cells (OSCs), yet their molecular packing and aggregation behavior during solution processing remain difficult to control, limiting hole transport and device durability. This study introduces a polymer-templated self-assembly strategy to regulate molecular organization by one-step spin-coating a blend of [2-(9H-carbazol-9-yl)ethyl]phosphonic acid (2PACz) and PEDOT:PSS. The polycationic PEDOT+ framework acts as a template, providing supplementary anchoring interactions that promote ordered molecular arrangement and suppress unfavorable agglomeration. Pronounced face-on orientation and enhanced structural coherence of 2PACz within the polymer matrix are evidenced. The templated ordering improves vertical charge transport, interfacial homogeneity, and film morphology. In binary OSCs based on PM6:BTP-eC9, the hybrid hole transport layers (HTLs) yield a champion power conversion efficiency (PCE) of 20.26%, with an open-circuit voltage (VOC) of 0.874 V, a short-circuit current (JSC) of 28.97 mA cm-2, and a fill factor (FF) of 80.02%. Devices incorporating hybrid HTLs exhibit exceptional operational stability, retaining over 90% of initial PCE (T90) after 405 h of continuous operation at the maximum power point (MPP). This work establishes polymer-directed SAM assembly as a scalable route to simultaneously optimize nanoscale molecular packing, interfacial energetics, and long-term device stability for high-performance OSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4279-0
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 Materials•2026•DOI: 10.1007/s40843-026-4439-4
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 Materials•2026•DOI: 10.1007/s40843-026-4384-9
Nanovesicle-hybridized hydrogels constitute a class of bioactive materials that integrate the structural stability of polymer networks with the intrinsic biological functions of nanoscale vesicles. Conventional hydrogels suffer from swelling-induced mechanical degradation, uncontrollable cargo release, and an inability to integrate multiple bioactivities. Hybridization with nanovesicles provides a robust solution to these limitations. This review systematically delineates the evolution of construction strategies, transitioning from simple physical entrapment to advanced chemical crosslinking involving noncovalent supramolecular interactions and covalent conjugation. We elucidate how these integration methods fundamentally enhance mechanical strength, enable spatiotemporally controlled release of vesicles and their cargos, and endow composite systems with multifaceted bioactivities. The diverse biomedical applications of these hybridized platforms in drug delivery, tissue engineering, and disease therapy are thoroughly discussed. Current technical hurdles in clinical translation and promising future directions are identified, providing a roadmap for the next generation of intelligent biomimetic materials. The review emphasizes that the shift from physical doping to chemical crosslinking represents a paradigm change, yielding composites with superior mechanical resilience and programmable release kinetics. By critically assessing the trade-offs between crosslinking density, vesicle integrity, and payload retention, this work offers a framework for designing hybrid systems with tailored properties. Key challenges include scalable manufacturing, long-term stability, and regulatory hurdles. The analysis underscores that clinical translation demands standardized protocols for vesicle isolation, crosslinking efficiency, and sterility assurance. This review serves as a benchmark for researchers and engineers aiming to bridge the gap between laboratory-scale fabrication and industrial production of nanovesicle-hybridized hydrogels.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4472-0
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 Materials•2026•DOI: 10.1007/s40843-026-4464-9
Topological polarization textures have transitioned from theoretical predictions to experimental observations over two decades, yet their stabilization has remained largely confined to low-dimensional architectures where geometric confinement balances depolarization, strain, and gradient energies. Extending these textures into bulk ferroelectrics and quantitatively linking them to macroscopic electromechanical properties constitutes a persistent challenge. Wu et al. address this by engineering vortex and antivortex domains in bulk rhombohedral 0.7Pb(Mg1/3Nb2/3)O3-0.3PbTiO3 (PMN-30PT) crystals. Phase-field simulations reveal that increasing vortex core density from 6 to 27 μm⁻² enhances the dielectric constant (ε33/ε0) and piezoelectric coefficient (d33) by approximately 3.5-fold and 3.4-fold, respectively, correlating with increased polarization curl. Experimentally, a mechanically assisted direct-current poling (MDCP) strategy elevates vortex core density from 0.01 to 21 μm⁻², boosting d33 from 1380 to 1820 pC·N⁻¹ and ε33/ε0 from 4,630 to 6,230. This mechanically driven approach enables controllable manipulation of topological domain architectures in bulk crystals without nanoscale confinement, offering a scalable route for functional optimization. The work establishes bulk ferroelectrics as a platform for topology-mediated electromechanical design, introducing an additional degree of freedom for enhancing piezoelectric performance in three-dimensional crystals.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4433-5
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 Materials•2026•DOI: 10.1007/s40843-026-4320-4
Colloidal lead halide perovskite quantum dots (Pe-QDs) have achieved external quantum efficiencies exceeding 20% in red, green, and blue light-emitting diodes (LEDs), yet their integration into high-resolution displays is impeded by two persistent bottlenecks: the intrinsic ionic lability of Pe-QDs, which compromises structural and environmental stability, and the absence of mild, high-fidelity patterning techniques that avoid ligand detachment and surface defect formation. This work addresses both obstacles through a dual strategy. First, a ligand-fluoride co-stabilization method yields shape-defined, colloidally stable rhombic dodecahedral CsPbBr3 Pe-QDs; subsequent fluorine surface reconstruction using tetrabutylammonium fluoride (TBAF) enhances ligand binding affinity, producing BHOA+F CsPbBr3 Pe-QDs with a photoluminescent quantum yield (PLQY) of 94.6%. Accelerated ageing, ultraviolet irradiation, and thermal cycling tests confirm improved structural and environmental stability. Second, capillary liquid-bridge confined assembly enables reproducible, scalable fabrication of pixelated Pe-QDs with in-plane long-range order, vertical confinement, and precise spatial patterning. The resulting pixelated Pe-QDs LEDs exhibit high efficiency, sufficient brightness, and long operational stability, with the approach generalizable across red, green, and blue Pe-QDs for wide color gamut displays. This combination of surface fluorination and liquid-bridge assembly represents a landmark achievement in high-resolution display technology.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4479-8
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 Materials•2026•DOI: 10.1007/s40843-026-4505-9
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 Materials•2026•DOI: 10.1007/s40843-026-4467-x
Conventional eye-movement interaction systems depend on video capture, infrared tracking, and image recognition, which impose inherent constraints on accuracy, response latency, and stability. This study introduces an eyelash-guided signal interaction system based on a triboelectric nanogenerator (PF-TENG) using PDMS-FDTS thin films. The system employs eyelash movements as interactive inputs, eliminating the need for complex optical acquisition devices. A CNN-LSTM hybrid neural network classifies distinct eyelash movement patterns with a classification accuracy exceeding 98.5%. The PF-TENG device exhibits ultra-flexibility and transparency, enabling seamless integration onto eyeglasses without obstructing the user's field of view. Experimental validation demonstrates real-time monitoring of ocular states for driving fatigue detection, accurately identifying fatigue signs and enhancing application potential in intelligent driving. The system offers a natural, comfortable input modality and significant advantages for human-machine interaction, with broad prospects in eye-movement control and intelligent transportation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4343-7
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 Materials•2026•DOI: 10.1007/s40843-026-4371-6
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 Materials•2026•DOI: 10.1007/s40843-026-4249-2
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 Materials•2026•DOI: 10.1007/s40843-026-4248-2
Marine biofouling imposes substantial operational penalties on maritime assets, yet commercial silicone foul-release coatings rely on static, non-adaptive networks that cannot be reprocessed or repaired. This work introduces selenonium-salt-catalyzed dynamic siloxane exchange as a route to polydimethylsiloxane (PDMS) vitrimer coatings. The authors incorporate A16Se+ organoselenium catalysts into PDMS networks at loadings designated A16Se+xPDMS, enabling thermally activated siloxane bond exchange that confers vitrimeric stress relaxation, reprocessability, and high-temperature self-healing. Antibiofouling performance is benchmarked against pristine PDMS using colony morphology assays for Staphylococcus aureus, Escherichia coli, and Pseudomonas aeruginosa, SEM imaging of bacterial adhesion after 3 h, Chlorella fluorescence adhesion quantification, zeta potential measurements, and 3-month seawater immersion panels. Reviewer 1 questioned the direct relevance of recyclability and high-temperature self-healing to marine antifouling and requested that surface elastic modulus and Pseudomonas antibacterial data be elevated to the main text. In response, the authors relocated scratch and self-healing results from Figure 5 to Supporting Information Figures S12 and S13, condensed the main-text discussion, and integrated surface elastic modulus data into Figure 4G and Pseudomonas antibacterial results into Figure 6A. The revised manuscript positions dynamic exchange as supporting evidence of network dynamics rather than as a primary antifouling metric, while foregrounding modulus and antibacterial performance as the application-relevant properties.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4418-7
Glioblastoma (GBM) remains the most lethal primary brain tumor, with the blood-brain barrier (BBB) severely restricting effective treatment options. Immunotherapy has achieved remarkable success in cancers such as lung cancer and melanoma, yet its efficacy in GBM is constrained by the immunosuppressive tumor microenvironment and a paucity of tumor-infiltrating T cells. This study developed a biomimetic nanocomposite for the co-delivery of an immunogenic cell death (ICD) inducer and an indoleamine 2,3-dioxygenase 1 (IDO-1) inhibitor to overcome these challenges. Paclitaxel-derived carbon dots (PCDs), which induce ICD in tumor cells and promote the recruitment and activation of immune cells, were synthesized and assembled with Indoximod (an IDO-1 inhibitor) to form a nanocomposite (P-In). A biomimetic coating was subsequently applied to create M@P-In. This coating significantly enhanced BBB penetration and tumor cell uptake. The M@P-In nanocomposite efficiently induced ICD in tumor cells and inhibited IDO-1 activity via the released Indoximod, thereby reversing T-cell suppression and activating antitumor immune responses. Consequently, M@P-In demonstrated potent antitumor efficacy against glioblastoma in vivo with minimal systemic toxicity. This work presents a novel and promising strategy for immunochemotherapy against GBM by co-delivering a carbon dot-based ICD inducer and an IDO-1 inhibitor to the tumor site.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4267-y
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 Materials•2026•DOI: 10.1007/s40843-026-4328-2
Laser-driven broadband near-infrared (NIR) light sources are highly desirable for diverse non-visible optical applications. However, conventional phosphor-in-silicone converters will be rapidly invalidated under high-power laser excitation, and the poor structural stability of Cr3+ activated gallate/germanate phosphors makes them prone to interfacial reaction with silicate glass, leading to substantial deterioration in luminescence properties of phosphor-in-glass film (PiGF) converters. Herein, we report an efficient and stable ultrabroadband NIR PiGF with a high internal quantum efficiency of ≈ 94%, a long peak wavelength of 850 nm and an ultra-large full width at half maximum of 300 nm. The detrimental interfacial reactions with glass matrix are effectively suppressed by embedding the Cr3+ activated superstoichiometric MgO·1.75Al2O3 phosphor, which is attributed to the superior high-temperature structural stability of the aluminate spinels. Through effective thermal management by the sapphire plate and further a motor-driven rotating wheel, a high-performance laser-driven light source is further demonstrated, which can deliver high-brightness ultrabroadband NIR light with an output power exceeding 1.1 W, a light conversion efficiency of 26%, and a stable operation for over 15 hours. Our work provides an efficient, stable and cost-effective all-inorganic converter for the development of laser-driven NIR light sources.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4362-y
The commercial viability of zinc-air batteries (ZABs) is constrained by the sluggish kinetics of the oxygen reduction reaction (ORR), which necessitates robust, cost-effective catalysts. While cobalt-based single-atom catalysts (Co SACs) exhibit superior selectivity and stability relative to Fe-N-C counterparts, their intrinsic ORR activity remains limited by scaling relations among intermediates. This study alleviates these constraints by precisely engineering the coordination symmetry of Co SACs. Through a mild annealing strategy, boron was incorporated into the first and second coordination shells of Co centers, creating an asymmetric Co-N3B-O local environment. The first-shell B/O coordination modulates the electronic structure of the Co center, while hydrogen bonding between *OOH and the coordinated O atom stabilizes the key intermediate, synergistically enhancing ORR activity. The optimized Co-BCN-950 catalyst delivers a peak power density of 216 mW cm-2 in ZABs, a 43% enhancement over commercial Pt/C (151 mW cm-2), alongside an open-circuit voltage of 1.43 V and a specific capacity of 790 mAh g-1. These findings establish a paradigm for tailoring the local coordination of SACs, enabling next-generation high-stability energy storage systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4415-3
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 Materials•2026•DOI: 10.1007/s40843-026-4499-9
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 Materials•2026•DOI: 10.1007/s40843-026-4452-8
Europium(III) complexes offer intrinsically narrow red emission (full-width at half-maximum < 5 nm) that is highly desirable for ultrahigh-definition displays, yet their electroluminescence performance is severely limited by unbalanced charge transport and inefficient energy transfer. This work reports a molecular design strategy that modulates both energy transfer and charge transport in Eu³⁺ OLEDs. The synthesized complex, Cz-Eu, incorporates a carbazole-functionalized ancillary ligand to facilitate host–guest energy transfer and hole transport. The single-crystal structure was deposited (CIF: Cz-Eu-cif.cif) and subjected to PLATON validation, which flagged 3 type-1 alerts (CIF construction/syntax errors), 8 type-2 alerts (possible structural model deficiencies), 12 type-3 alerts (low structure quality), and 4 type-4 alerts (improvement suggestions), with no duplication detected. These crystallographic alerts indicate that the reported structure requires further refinement before it can be considered reliable. Nevertheless, the device metrics demonstrate a promising route: the optimized OLED achieves efficient ultranarrow-band red emission, with the potential for high color purity and reduced power consumption. The findings underscore the critical role of ligand engineering in balancing charge fluxes and fostering efficient energy transfer, providing a viable pathway for next-generation red emitters. However, the structural ambiguities highlighted by the PLATON analysis warrant cautious interpretation of the structure–property relationships and suggest that additional crystallographic and device stability studies are necessary to substantiate the claimed performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4245-4
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 Materials•2026•DOI: 10.1007/s40843-026-4358-y
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 Materials•2026•DOI: 10.1007/s40843-026-4383-8
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 Materials•2026•DOI: 10.1007/s40843-026-4412-y
GeTe-based thermoelectric materials are promising lead-free alternatives to PbTe, but their intrinsically high Ge vacancy concentration (~10^21 cm^-3) leads to excessive carrier density and degraded Seebeck coefficient. This study integrates resonant levels (RLs) via In doping and local van der Waals gaps via Sb/Bi alloying to decouple electron and phonon transport. The optimal composition Ge0.91Sb0.04Bi0.04In0.01Te exhibits a Seebeck coefficient of ~287.31 μV K^-1 at 323 K, more than double that of the In-free sample (~102.28 μV K^-1). The peak figure of merit zT reaches ~1.8 at 723 K, with an average zT of ~1.0 over 323–723 K. Vickers hardness is enhanced to ~224 HV, a ~93% improvement over pristine GeTe (~116 HV). X-ray diffraction reveals a structural evolution toward a pseudo-cubic phase with increasing In content, and the (202) peak shifts to lower angles, indicating lattice expansion. These results demonstrate that synergistic RLs and van der Waals gaps effectively optimize carrier concentration and suppress thermal conductivity, offering a viable route for high-performance, mechanically robust GeTe thermoelectrics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4498-7
Two-dimensional porphyrin-based hypercrosslinked polymers (TPP-HCPs) were synthesized via room-temperature interfacial polymerization using 5,10,15,20-tetraphenylporphyrin and 1,3,5-trioxane. The resulting TPP-HCPs exhibited a BET surface area of 548 m2 g-1 and a CO2 uptake of 7.97 wt% at 1 bar and 298 K. CuO/TPP-HCPs nanospheres were fabricated by thermal conversion of Cu(NO3)2·3H2O in DMF at 135 °C, using TPP-HCPs as dynamic templates. This in-situ strategy generated CuO nanoparticles within the conjugated porous matrix, facilitating electron transfer and enhancing CO2 access to catalytic centers. In CO2 electroreduction, the composite achieved a total gas Faradaic efficiency exceeding 90% at ~500 mA cm-2 (-1.4 V vs. RHE), with 40.9% for C2H4, 8.2% for CH4, 31.9% for CO, and 12.3% for H2. The catalyst maintained stability over 24 h in an H-cell. These results demonstrate that 2D conjugated polymer-templated catalysts can sustain high-rate CO2 conversion to value-added products, offering a viable route for industrial CO2 utilization.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4405-9
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 Materials•2026•DOI: 10.1007/s40843-026-4432-9
Sodium vanadium phosphate (Na3V2(PO4)3, NVP) with NASICON structure is a promising cathode for sodium-ion batteries but suffers from low electronic conductivity and a high energy barrier for the V4+/V5+ redox couple, limiting practical energy density. A medium-entropy tuning strategy yields the multi-element substituted Na3.2V1.5Cr0.1Fe0.1Mn0.1Ni0.1Ti0.1(PO4)3 (ME-NVP). Entropy modulation tailors the microscopic electronic structure, enabling reversible V4+/V5+ redox at 4.0 V. Analyses reveal a synergistic diffusion mechanism that accelerates Na+ transport and enhances multiple-electron redox kinetics. Ex-situ X-ray diffraction confirms highly reversible structural evolution during cycling. The ME-NVP cathode delivers 116.8 mAh g-1 at 0.1C and retains 83.9% of initial capacity after 1000 cycles at 20C, with excellent performance from -12 to 50 °C. This work demonstrates that configurational entropy regulation unlocks high-energy polyanion cathodes for advanced sodium-ion batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4448-y
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 Materials•2026•DOI: 10.1007/s40843-026-4476-1
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 Materials•2026•DOI: 10.1007/s40843-026-4365-2
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 Materials•2026•DOI: 10.1007/s40843-026-4391-5
Self-assembled monolayers (SAMs) enable precise tuning of the ITO/active layer interfacial dipole, yet their impact on the crystallization kinetics of the overlying active layer remains poorly understood, limiting their potential in high-efficiency organic solar cells. This study introduces THPC, a self-assembling material with an extended carbazole core and heteroatom substitution, as a hole transport layer (HTL). Unlike the hydrophilic PEDOT:PSS, THPC exhibits low surface energy, providing a favorable template that extends the film formation kinetics of the PM6:L8-BO-X blend by nearly 1.4 times, mitigating the explosive nucleation prevalent in PM6-based active layers. This promotes a highly ordered fibrous morphology and enhances vertical phase separation. The deep work function of THPC (5.32 eV) increases the built-in potential, reduces interfacial trap density, and facilitates charge extraction. Consequently, non-radiative recombination loss decreases from 0.243 eV to 0.227 eV, and the open-circuit voltage rises from 0.866 V to 0.883 V, yielding a power conversion efficiency (PCE) of 20.19%, outperforming the PEDOT:PSS control (18.67%). This finding is confirmed across multiple Y-series acceptors, all approaching 20% PCE. Notably, the D18:L8-BO system achieves a PCE of 20.55%, demonstrating broad applicability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4321-x
Poly(ethylene oxide) (PEO)-based solid polymer electrolytes are leading candidates for solid-state lithium metal batteries due to their flexibility, processability, and interfacial compliance. However, the strong crystallization tendency of PEO and limited lithium salt dissociation result in low ionic conductivity and low Li+ transference number, exacerbating concentration polarization and interfacial instability. Introducing metal-organic framework (MOF) fillers into PEO matrices has emerged as an effective route to regulate polymer-chain packing and promote salt dissociation via Lewis acid-base interactions. Yet, most studies focus on cubic ZIF-8, whose saturated Zn coordination environment limits intrinsic Lewis acidity and restricts its ability to immobilize TFSI- anions. Simultaneously, simple physical blending often leaves discontinuous interfacial transport regions in composite electrolytes, so improved salt dissociation does not automatically translate into fast Li+ transport. Here we report a PEO-based composite polymer electrolyte, denoted as PZS, that couples monoclinic ZIF-8 (M-ZIF-8) nanosheets with a thin SiO2 layer. The design combines two complementary functions: the under-coordinated Zn sites in M-ZIF-8 provide strong Lewis acid centers to adsorb TFSI- and promote LiTFSI dissociation, while the hydroxyl-rich SiO2 shell improves compatibility with the PEO matrix and helps construct continuous interfacial Li+ transport pathways. Benefiting from this synergy, the optimized PZS electrolyte delivers an ionic conductivity of 8.3 × 10-4 S cm-1 and a Li+ transference number of 0.57 at 60 ℃, together with an electrochemical stability window of 5.2 V. Li||Li symmetric cells remain stable for over 1200 h at 0.1 mA cm-2, and LFP||Li full cells retain 80% of their capacity after 400 cycles at 0.5 C.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4473-9
Selective ion separation is critical for resource recovery, water treatment, lithium extraction from salt lakes, and nuclear waste management, yet the differences in size, solvation structure, and coordination behavior among ions are often minimal, and separation is further complicated by valence, interfacial charge, and competing ions. Nanoporous materials with tunable sub-nanometer channels and chemically active interfaces can regulate ion entry, solvation reorganization, interfacial partitioning, intrapore migration, and release. This review examines three mechanistic categories—size and solvation sieving, chemical recognition, and dynamic gating—from the perspective of confined transport and ion–pore interactions, and compares their roles and coupling in systems of monovalent–monovalent, divalent–divalent, heterovalent, and chemically similar multivalent ions. We further distinguish selective adsorption, membrane enrichment, and transmembrane transport, and discuss how selectivity definitions, ion flux, feed composition, driving force, and operating time affect performance evaluation. Current research faces three major challenges: lack of comparability of performance data across different test conditions, insufficient direct evidence of ion solvation, site occupancy, and migration under operating conditions, and the complexity of feed streams. By adopting a sequential ion transport process as a unified conceptual framework, this review systematically compares separation mechanisms across diverse nanoporous materials, including MOFs, COFs, zeolites, 2D materials, microporous polymer membranes, ion-exchange membranes, biomimetic nanochannels, organic–inorganic composites, functionalized porous carbons, and biochars. This transport-process-oriented framework provides a general and mechanistic perspective for understanding and comparing selective ion separation across diverse nanoporous platforms.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4420-7
Cu2-xSe is a leading p-type thermoelectric material owing to its phonon-liquid electron-crystal (PLEC) behavior, yet the atomic-scale mechanisms governing Cu+ migration remain unresolved. This study employs in situ high-resolution neutron diffraction coupled with maximum entropy method (MEM) analysis to map the temperature-dependent evolution of Cu+ nuclear density in β-Cu2Se and β-Cu1.95Se. At 398–423 K, intra-tetrahedral Cu 8c ↔ 32f <111> hopping emerges, with isosurface values of 0.505 fm Å-3 for β-Cu2Se and 0.484 fm Å-3 for β-Cu1.95Se. Above 448 K, inter-tetrahedral pathways form via Cu 32f ↔ 32f <100> or 32f ↔ 4b ↔ 32f <111> migration, as revealed by line scans along [1̅11̅] up to 723 K. The presence of Cu vacancies (x = 0.05) alters the onset and connectivity of these pathways, directly impacting phonon scattering and electron transport. These findings establish a structural basis for controlling Cu+ mobility, offering a rational route to mitigate Cu precipitation and enhance zT stability beyond 1.5 at 900 K. The work bridges microstructural dynamics and thermoelectric performance, providing critical guidance for defect engineering in superionic thermoelectrics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4416-8
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 Materials•2026•DOI: 10.1007/s40843-026-4490-y
The development of efficient enzyme mimics for CO2 hydration remains a critical challenge for industrial carbon capture. This study reports a bioinspired three-dimensional Zn-coordinated organic framework (Zn-SOF) synthesized via solvothermal assembly of a salen-based ligand with zinc ions. The resulting material exhibits a carbonic anhydrase-like active site with a Zn-N2O2 coordination environment, as confirmed by X-ray absorption spectroscopy. The Zn-SOF demonstrates a CO2 hydration rate of 3.2 × 10^-3 s^-1 per active site, representing a 12-fold enhancement over the homogeneous Zn-salen complex and approaching 8% of native carbonic anhydrase II activity. The catalyst maintains structural integrity over 10 consecutive cycles with <5% activity loss and operates optimally at 25–40 °C and pH 7.4–9.0. Kinetic analysis reveals a Michaelis-Menten constant (Km) of 28 mM for CO2 and a turnover number (kcat) of 4.1 s^-1, outperforming benchmark Zn-based mimics. The framework's hierarchical porosity (BET surface area: 620 m2 g^-1) facilitates substrate diffusion, while the hydrophobic pore environment enhances CO2 affinity. This work establishes a design paradigm for robust, recyclable enzyme mimics that bridge the gap between homogeneous catalysts and natural enzymes, offering a scalable route for post-combustion CO2 capture.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4395-x
Electrocatalysts in lithium–sulfur (Li–S) batteries accelerate sulfur species redox reactions and restrict polysulfide shuttling, yet ideal electrocatalysts with remarkable bidirectional catalytic effects remain scarce. This work utilizes iron (Fe) to trigger bidirectional catalytic effects in a cobalt (Co) electrocatalyst, generating a metal alloy-based heterostructure of Co-Co7Fe3 dispersed homogeneously on carbon sheets (Co-Co7Fe3/CS). Electrochemical tests and in situ X-ray diffraction disclose significantly enhanced bilateral catalytic activity of Co-Co7Fe3 compared to bare Co, confirmed by self-discharge measurements. Post-cycling investigation validates protection of the Li metal anode from sulfur species corrosion. The Co-Co7Fe3/CS-modified coin cells deliver an exceptional rate capability of 603 mAh g–1 at 5.0 C and steady long-life cycling for 500 cycles at 1.0 and 2.0 C. Under high sulfur loadings and lean electrolyte conditions, an impressive areal capacity with stable cycling is realized. This work provides valuable insights for designing metal alloy-based heterostructures as advanced electrocatalysts in Li–S batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4417-x
Balancing mechanical strength, corrosion resistance, and soft magnetic performance in structural-functional integrated materials remains a persistent metallurgical challenge. This study reports a face-centered cubic (FCC) Fe40Co35Ni15Al3Ta2Cr5 (at.%) high-entropy alloy (HEA) that achieves an unprecedented combination of these properties. The alloy exhibits a tensile strength of ~1200 MPa, total elongation of ~25%, saturation magnetization of 101.54 Am2·kg-1, and coercivity of 267.34 A·m-1. These values surpass most reported magnetic HEAs and conventional soft magnetic alloys. In a simulated 3.50 wt.% NaCl seawater environment, the alloy demonstrates a corrosion current density of 3.99 × 10-7 A·cm-2, comparable to 316L stainless steel. The synergy arises from nanoprecipitate engineering within the FCC matrix, which impedes dislocation motion while maintaining magnetic domain wall mobility and promoting a protective passive film. This work provides a design pathway for soft magnetic structural-functional materials suitable for corrosive marine environments, where simultaneous load-bearing and magnetic actuation are required.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4480-1
Ternary organic solar cells (OSCs) incorporating a structurally compatible guest acceptor (C7-Cl) into the PM6:BTP-eC9 host system are demonstrated. The low Flory-Huggins interaction parameter between host and guest acceptors facilitates intimate mixing, optimizing molecular packing and energy-level alignment. High-sensitivity sEQE and EQEEL analyses reveal a reduced non-radiative energy loss (KE3) of 0.216 eV in the ternary device. Consequently, the optimized ternary OSC achieves a champion power conversion efficiency (PCE) of 20.02% and an improved T80 operational lifetime of 1065 h. This work establishes a feasible strategy via structurally compatible guest doping to simultaneously optimize vertical phase separation and suppress non-radiative loss, providing a facile and effective route toward high-performance and stable OSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4494-9
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 Materials•2026•DOI: 10.1007/s40843-026-4466-3
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 Materials•2026•DOI: 10.1007/s40843-026-4477-7
The rapid demand for high-energy-density lithium batteries necessitates advanced solid-state electrolytes (SSEs) to overcome the safety and performance limitations of conventional liquid counterparts. Macrocyclic compounds, with their well-defined cavities, programmable binding sites, and tunable self-assembly, have emerged as powerful molecular regulators for designing next-generation SSEs. This review examines recent advancements in macrocyclic compound-based SSEs by categorizing their functions into four fundamental supramolecular regulation paradigms: cation-centered regulation (e.g., crown ethers), anion-centered regulation (e.g., calixarenes and calixpyrroles), channel-dominated transport (e.g., cyclodextrins), and hybrid regulation (e.g., cucurbiturils). We elucidate how these macrocycles precisely control ion coordination, modulate migration dynamics, and reshape interfacial chemistry, leading to enhanced ionic conductivity, improved Li+ transference numbers, suppressed lithium dendrite growth, and superior interfacial stability. While each paradigm offers distinct advantages, the most promising SSEs often leverage synergistic combinations of these strategies. Finally, we highlight the remaining challenges, including synthetic complexity and multi-objective performance trade-offs, and propose future research directions for developing highly efficient and durable macrocycle-based solid-state lithium batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4288-1
The high-temperature oxidation resistance of Cr2AlC MAX phase ceramics is severely compromised by rapid Al depletion and the formation of a brittle sub-surface Cr7C3 layer. This study elucidates how trace Y2O3 doping (0.25 and 0.5 wt.%) modulates the oxidation behavior of Cr2AlC at 1100 °C. The incorporation of 0.5 wt.% Y2O3 significantly suppresses the parabolic rate constant compared to undoped counterparts. This kinetic suppression is attributed to the Reactive Element Effect (REE), where Y3+ segregation at α-Al2O3 grain boundaries inhibits outward Al3+ diffusion, shifting the scale growth mechanism to inward oxygen diffusion control. Consequently, this retarded Al consumption prevents the decomposition of the Cr2AlC substrate into Cr7C3. While undoped specimens fail due to volume contraction and Kirkendall voiding associated with the Cr7C3 interlayer, specimens with the most effective doping content within the investigated range maintain a stable, atomically sharp α-Al2O3/Cr2AlC interface devoid of voids and decomposition products. The superior adhesion of this interface is attributed to three synergistic factors: the elimination of volumetric mismatch induced by phase transformation, the mechanical interlocking provided by Y-rich oxide pegs, and the intrinsically higher interfacial bonding strength of the α-Al2O3/Cr2AlC system as confirmed by DFT calculations. These findings provide a mechanistic framework for designing oxidation-resistant MAX phase ceramics via reactive element doping.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4404-7
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 Materials•2026•DOI: 10.1007/s40843-026-4309-8
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 Materials•2026•DOI: 10.1007/s40843-026-4313-7
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 Materials•2026•DOI: 10.1007/s40843-026-4324-4
Magnesium-oxygen (Mg-O2) batteries offer high theoretical energy density and low-cost earth-abundant magnesium, yet practical deployment has been impeded by poor cycling stability and low energy efficiency, primarily due to the sluggish decomposition of conventional MgOx discharge products. Here we demonstrate that trace water in the electrolyte redirects the cathodic reaction to form chemically reactive Mg2(OH)3Cl·4H2O as the main discharge product, enabling a new reversible pathway: 8Mg2+ + 4Cl- + 3O2 + 22H2O ⇋ 4Mg2(OH)3Cl·4H2O. This water-mediated chemistry significantly enhances redox reversibility compared with the MgOx route. The resulting Mg-O2 battery delivers over 324 stable cycles at 1000 mA·g-1 with a capacity of 500 mAh·g-1 and an energy efficiency of 92%, surpassing all previously reported Mg-O2 systems. The electrolyte comprises 0.25 M magnesium bis(trifluoromethanesulfonyl)imide (Mg(TFSI)2) and 0.5 M magnesium chloride (MgCl2) in ethylene glycol dimethyl ether (DME) with a trace amount of water. These findings establish a general strategy for reversible Mg-O2 electrochemistry and provide a new design paradigm for practical magnesium-based energy storage.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4488-x
Thermochromic smart windows based on hydrogels suffer from inevitable freezing at subzero temperatures and dehydration at elevated temperatures, severely limiting their year-round applicability. This study reports a hydrogel-derived liquid (HDL) smart window that circumvents these limitations through a solvent-exchange strategy. The HDL is synthesized by polymerizing a hydroxypropyl cellulose (HPC) and N-isopropylacrylamide (NIPAM) network in a water-glycerol binary solvent, followed by complete removal of the water phase via vacuum-assisted evaporation. The resulting anhydrous liquid exhibits a lower critical solution temperature (LCST) of 32 °C, with a solar modulation ability (ΔTsol) of 63.2% and a luminous transmittance (Tlum) of 88.1% in the clear state. Critically, the HDL remains optically switchable after 1000 hours at -40 °C and 1000 hours at 80 °C, with no observable phase separation or freezing. The smart window prototype demonstrates a 12.3% reduction in indoor cooling energy consumption in a simulated tropical climate and a 9.8% reduction in heating energy in a cold climate, compared to a commercial low-E glass. The liquid-state formulation enables facile large-area fabrication via roll-to-roll processing, with a demonstrated 30 cm × 30 cm prototype retaining 95% of the initial ΔTsol after 500 bending cycles. This work establishes a viable pathway for all-climate energy-efficient building envelopes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4468-6
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 Materials•2026•DOI: 10.1007/s40843-026-4165-1
Developing efficient photocatalysts for hydrogen peroxide (H2O2) synthesis is vital for sustainable chemistry, yet optimizing the electronic structure of triazine-based covalent organic frameworks (COFs) through precise spatial engineering remains a challenge. In this work, we constructed four model COFs to systematically decode how the spatial arrangement and incorporation level of triazine moieties regulate the electronic structures and H2O2 production efficiency. Combined experimental and theoretical analyses revealed that FB-AT achieved an optimal donor-acceptor architecture via rational spatial arrangement of triazine and benzene moieties. This configuration established an intramolecular potential gradient, which not only promoted charge separation by suppressing the exciton binding energy but also enriched the electron density at triazine sites. These electron-rich active centers significantly facilitated the oxygen reduction reaction by lowering the thermodynamic energy barrier for *OOH intermediate formation. Consequently, FB-AT exhibited a remarkable H2O2 production rate of 11055 μmol g-1 h-1 in pure water, along with a superior solar-to-chemical conversion efficiency of 1.16%. Additionally, FB-AT enabled complete degradation of phenol, tetracycline, and rhodamine B within 5–15 min of visible light irradiation. This work provides crucial guidance for the rational design of advanced COF photocatalysts for sustainable H2O2 production and water decontamination.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4177-3
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 Materials•2026•DOI: 10.1007/s40843-026-4482-6
Polymer semiconductors offer solution processability, mechanical flexibility, and molecular tunability for flexible displays, wearable devices, and the Internet of Things, yet their charge transport properties remain substantially inferior to inorganic semiconductors. Efficient charge transport demands simultaneous structural order across molecular conformation, aggregate connectivity, and macroscopic orientation, but these length scales are strongly coupled: primary aggregates in solution, secondary nucleation during solvent evaporation, and final film solidification intertwine, rendering structural control dependent on empirical trial and error. Prior approaches—molecular design, solvent additives, thermal annealing, and shear coating—have improved crystallization and orientation, but two interrelated issues persist. First, enhancing aggregation does not guarantee higher mobility: insufficient aggregation yields small, loosely connected structures, while excessive aggregation causes premature nucleation, fiber twisting, and large grain boundaries. Second, direct observation of how solution aggregates evolve across molecular, mesoscopic, and macroscopic scales into solid films is often lacking. The fundamental challenge is not whether to promote crystallization, but how to cooperatively control aggregate type/size, internal order, connectivity, and assembly pathway, and to transform empirical solvent selection into predictive design rules. Zhao et al. report a self-templated gradient assembly (STGA) strategy that couples solubility parameters with vapor pressure to regulate both solution-state aggregation and assembly kinetics. Unlike conventional anti-solvent approaches that trigger rapid nucleation, STGA operates within mutually compatible solvent mixtures that retain polymer solubility and generate a continuous decline in solvent quality during evaporation. Preformed ordered aggregates become endogenous templates for subsequent assembly and crystallization rather than transient intermediates. Using a newly designed linear donor–acceptor polymer, PFIDTO-BT, and the relative energy difference (RED) index, cryogenic transmission electron microscopy confirmed that primary aggregates systematically enlarge as solvent quality decreases. Vapor pressure provides a second dimension, defining a solvent-selection matrix. For low-solubility, low-volatility components, the selectivity toward side chain/backbone parameter Ratio (S/B) further distinguishes aggregation pathways induced by different poor solvents. This framework connects solvent selection to hierarchical polymer organization through a semi-quantitative, experimentally testable methodology, enabling single-crystal-like polymer semiconductors with ultrahigh charge carrier mobility.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4487-1
Direct seawater electrolysis offers a cost-effective route to clean hydrogen, but the competitive chlorine evolution reaction (CER) and electrode corrosion impede practical deployment. A NiIr(OH)6 perovskite hydroxide catalyst was synthesized via one-step co-precipitation. In alkaline seawater, it requires only 330 mV overpotential to reach 100 mA cm-2 and sustains 190 h in multi-current step testing. In situ Raman spectroscopy shows that Ir species promote the formation of active NiOOH phases, accelerating oxygen evolution reaction (OER) kinetics. Density functional theory calculations reveal that Ir doping modulates the electronic structure of Ni and Ir sites, strengthening OH adsorption (-2.09 eV) and suppressing Cl- adsorption (-1.38 eV), thereby enhancing OER selectivity. An overall seawater electrolyzer with NiIr(OH)6 || Pt/C delivers 100 mA cm-2 at 1.63 V and operates stably for over 100 h. This work provides a rational design strategy for high-efficiency, corrosion-resistant electrocatalysts for seawater electrolysis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4275-3
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 Energy•2026•DOI: 10.26599/NRE.2025.9120181
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 Materials•2026•DOI: 10.1007/s40843-026-4491-3
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 Materials•2026•DOI: 10.1007/s40843-026-4495-3
Room-temperature phosphorescence (RTP) has attracted substantial interest for applications in smart optoelectronics, yet the development of dynamic RTP systems remains intrinsically challenging. Here, we report an appropriately rigid confinement strategy based on NaCl ionic crystals formed in situ via cation-anion exchange, which simultaneously suppresses non-radiative decay and retains sufficient structural flexibility for external stimulation. In the TPN/NaCl and DPB/NaCl systems, dynamic phosphorescence is realized exclusively upon sequential thermal activation and ultraviolet irradiation. Mechanistic investigations reveal that residual water and triplet oxygen initially quench triplet excitons, and their gradual removal enables a competitive evolution between triplet-triplet annihilation (TTA) and phosphorescence pathways. This work establishes a general design principle for constructing stimulus-responsive dynamic RTP systems and resolves the long-standing conflict between rigidity and responsiveness in organic phosphorescent materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4272-3
Ruthenium (Ru)-based alloys are promising alternatives to commercial Pt/C catalysts for the hydrogen evolution reaction (HER) owing to their low cost and favorable hydrogen adsorption properties. However, the sluggish water dissociation on Ru catalysts remains a major kinetic bottleneck in alkaline solutions. Herein, we report a rare earth (RE) dilute alloy strategy by incorporating a trace amount of cerium (Ce, ~1 at%) into a RuCu alloy to promote interfacial water activation. The oxophilic Ce sites strengthen H2O adsorption and reduce the energy barrier for water dissociation, thereby accelerating the Volmer step during alkaline hydrogen evolution. Consequently, the RuCuCe catalyst delivers 10 mA cm−2 at an overpotential of only 18 mV in 1.0 M KOH and maintains stable operation for over 100 h at 500 mA cm−2 in a membrane electrode assembly. In situ electrochemical impedance spectroscopy and pH-dependent measurements verify the facilitated Volmer process induced by Ce incorporation. Temperature-dependent analysis further shows that the apparent activation energy decreases from 47.4 kJ mol−1 for RuCu to 26.4 kJ mol−1 for RuCuCe, consistent with enhanced water dissociation kinetics. This work establishes RE dilute metal alloys as an effective platform for boosting the intrinsic activity of Ru-based alloy catalysts, in which RE incorporation promotes water dissociation while inducing charge redistribution in the alloy matrix.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4294-4
Room-temperature phosphorescence (RTP) polymer materials are attractive for flexible electronics and information encryption due to their tunability and processability. However, achieving polymeric RTP systems that simultaneously exhibit high thermal sensitivity, reversible multicolor emission, and long phosphorescence lifetime (τPhos) with high quantum yield (ΦPhos) remains challenging. Here, we report an in-situ cross-linked self-assembly strategy that converts flexible polymers into rigid polymer microspheres, yielding long τPhos, high ΦPhos, and thermally and time-dependent tunable RTP. The resulting microspheres (PM0.1-0.01-1) exhibit a maximum τPhos of 1754 ms and ΦPhos of 42.83%, markedly superior to previously reported intrinsic polymer RTP materials. At 77 K, they display ultralong green emission with a lifetime of 6019 ms and visible afterglow lasting up to 99 s. The cross-linked microspheres enable time-dependent, continuously tunable RTP and thermally responsive color switching, while maintaining excellent phosphorescence stability in aqueous and high-temperature environments. This provides a versatile platform for dynamic information encryption, full-color afterglow LEDs, and temperature sensing. The strategy establishes a general design principle for developing multidimensional, controllable, and stable high-performance polymer RTP materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4238-2
Infrared nonlinear optical (IR NLO) materials are critical for laser frequency conversion, yet their performance is often constrained by a trade-off between second harmonic generation (SHG) efficiency and laser-induced damage threshold (LIDT). Here, we report a new ternary diamond-like compound, AlGaS3, which successfully balances these competing demands. AlGaS3 crystallizes in a noncentrosymmetric structure composed of wide HOMO-LUMO gap [AlS4] tetrahedra and NLO-active [GaS4] tetrahedra. The compound exhibits a wide experimental optical band gap of approximately 3.38 eV, which is significantly larger than that of the benchmark AgGaS2 (AGS, ~2.70 eV). This wide band gap contributes to a high laser-induced damage threshold (LIDT) of approximately 6.0 times that of AGS, as determined by powder-based measurements. Notably, AlGaS3 also demonstrates a phase-matching SHG response of approximately 0.5 times that of AGS at a fundamental wavelength of 2.09 μm, with particle size-dependent behavior confirming phase-matchability. The combination of wide band gap, high LIDT, and moderate SHG response positions AlGaS3 as a promising candidate for high-power IR NLO applications. This work provides a viable strategy for designing IR NLO materials with enhanced laser damage resistance by incorporating wide-gap tetrahedral units.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4502-1
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 Materials•2026•DOI: 10.1007/s40843-026-4493-8
Metal halide perovskite photovoltaics have achieved power conversion efficiencies rivaling crystalline silicon, yet their transition from laboratory-scale devices to commercial deployment requires a paradigm shift toward application-specific engineering and macroscopic system integration. This review systematically evaluates the customized deployment of perovskite solar cells (PSCs) across diverse operational theaters, including building-integrated photovoltaics (BIPV), portable Internet of Things (IoT) systems, agricultural photovoltaics (Agri-PV), vehicle-integrated photovoltaics (VIPV), utility-scale tandems, and extreme space environments. Despite these opportunities, critical challenges persist in translating laboratory achievements into industrial-scale production. We critically evaluate primary bottlenecks hindering gigawatt-scale commercialization, focusing on the performance gap inherent in large-area manufacturing. Additionally, we analyze intrinsic material instabilities driven by dynamic ion migration and multi-scale lattice strain under realistic outdoor conditions. To conclude, we outline a strategic roadmap for overcoming these barriers, emphasizing lattice strain regulation, rigorous dynamic environmental testing protocols, and comprehensive sustainable lifecycle management. By synergizing mechanistic insights with scalable manufacturing and ecological assessments, this review provides a holistic framework to accelerate the ubiquitous commercialization of customizable, stable, and high-efficiency perovskite energy systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4273-3
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 Materials•2026•DOI: 10.1007/s40843-026-4306-5
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 Materials•2026•DOI: 10.1007/s40843-026-4138-5
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 Materials•2026•DOI: 10.1007/s40843-026-4240-7
The electrocatalytic ammonia oxidation reaction (AOR) is pivotal for sustainable energy conversion and storage, enabling direct ammonia fuel cells (DAFCs), ammonia electrolysis, and solid oxide fuel cells. This review critically examines recent advances in AOR catalysis, emphasizing active-site regulation, interfacial engineering, and device-oriented catalyst development. For noble-metal catalysts, optimizing adsorption and dehydrogenation of NHx intermediates while mitigating poisoning is essential for sustained activity. Non-noble-metal systems, particularly Ni-based catalysts, require precise control of reconstructed working-state phases such as NiOOH-like species to balance activity and selectivity. Interfacial engineering, including heterointerfaces, defect structures, and doped coordination environments, strongly influences the competition between AOR and oxygen evolution reaction (OER), as well as product branching toward N2 or oxygenated nitrogen species. The review underscores that catalyst optimization now extends beyond bulk composition to the precise regulation of the interfacial reaction microenvironment. Furthermore, practical device operation is governed by membrane/electrolyte compatibility, mass transport, ammonia crossover, thermal management, and long-term durability. Bridging fundamental catalyst studies with deployable ammonia energy technologies requires coordinated optimization from active materials to electrode architectures and full-device systems. This review provides a comprehensive framework for designing next-generation AOR catalysts and accelerating their integration into industrial energy systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4211-y
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 Materials•2026•DOI: 10.1007/s40843-026-4285-2
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 Materials•2026•DOI: 10.1007/s40843-026-4284-5
This highlight summarizes a recent breakthrough in integrated visual sensing and computing using symmetry-reconfigurable photodiodes (SRPDs). The device architecture comprises a metal-semiconductor-metal configuration with AgBiS2 as the active layer, enabling dynamic symmetry breaking through voltage-controlled silver filament formation. The SRPD exhibits broadband photosensitivity from 360 nm to 1,550 nm at an illumination intensity of 115 mW cm-2, as demonstrated by multiwavelength time-resolved photocurrent responses. The device can be programmed into fifteen distinct photoresponsivity states, facilitating analog memory and neuromorphic computing. In imaging experiments, an SRPD-based sensory chip successfully captured images through visibly non-transparent inked glass at 808 nm, highlighting its capability for information-lossless acquisition in scattering media. Furthermore, the device achieved high-accuracy pattern recognition with nearly zero false neuron outputs when projecting specific patterns (├, ┬, ┤), each correlating to a unique current output. As a proof of concept, real-time eye-tracking control of an unmanned aerial vehicle (UAV) was demonstrated, enabling the UAV to follow and monitor a moving cyberdog. These results underscore the potential of SRPDs for processing-in-sensor applications, neuromorphic vision, and human-machine interfacing, offering a compact solution that merges sensing and computing functionalities.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4261-2
Developing ion exchange membranes with both high proton conductivity and high selectivity is crucial for vanadium redox flow batteries (VRFBs). Commercial Nafion membranes suffer from severe vanadium crossover, while conventional additives often aggregate, disrupting ion domains and significantly reducing proton conductivity. To overcome this conductivity–selectivity trade-off, we propose a modification strategy based on molecular-level functional strategy. Two complementary additives, polyvinylpyrrolidone (PVP) and a fluoroalkyl-grafted polyoxometalate cluster (8FSiW11), are introduced into Nafion matrix to achieve precise, cooperative, regulation of ionic domains. PVP fills ion domains via hydrogen bonding and electrostatic interactions, constructing an efficient barrier against vanadium ions. Simultaneously, 8FSiW11 anchors at the hydrophilic/hydrophobic interface, providing additional proton sources and hopping sites to compensate for proton neutralization by PVP. The resulting hybrid membrane exhibits a proton/vanadium selectivity of 1×10^6 S min cm^-3, 8.6 times higher than commercial Nafion 212 (NR212), and enables VRFB energy efficiencies (EE) of 88.9% at 100 mA cm^-2 and 83.2% at 200 mA cm^-2. This work demonstrates the potential of synergistic molecular modification strategy to break conductivity–selectivity trade-off in membrane design for next-generation high-performance VRFBs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4295-5
Carbon nanomaterials (CNMs), including carbon nanotubes, graphene, and fullerenes, exhibit exceptional promise in precision biomedicine due to their tunable biocompatibility, programmable surface chemistry, large specific surface area, and quantum confinement effects. However, their clinical translation is hindered by aggregation, poor physiological dispersibility, and limited targeting specificity. This review systematically elaborates on surface engineering strategies—covalent functionalization, non-covalent assembly, and heteroatom doping—to optimize the multifunctionality, biocompatibility, and targeting capabilities of CNMs at the nano-bio interface. We explore how engineered interfaces enable advanced applications in biosensing, stimuli-responsive drug delivery, multimodal bioimaging, antibacterial therapy, and regenerative tissue engineering. The review also addresses challenges such as scalability, long-term toxicity, and regulatory hurdles, and proposes future directions to expedite clinical adoption. By providing a comprehensive framework for rational surface design, this work aims to bridge the gap between fundamental materials science and clinical needs, offering a roadmap for developing next-generation carbon-based theranostics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4302-9
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 Materials•2026•DOI: 10.1007/s40843-026-4271-5
Photocatalytic functional coatings are at a pivotal juncture where the primary research focus must transition from intrinsic material activity to a unified framework centered on surface serviceability. Surface serviceability encompasses the ability of a coating to maintain catalytic activity, interfacial integrity, multifunctional performance, safety, and manufacturability under specific service environments over its operational lifetime. Over the past three decades, photocatalytic surfaces have demonstrated potential for degrading organic pollutants, maintaining surface cleanliness, and enabling air purification, with applications in buildings, glass, highways, and infrastructure. However, high intrinsic activity alone does not guarantee stable long-term performance when the photocatalyst is immobilized as a substrate-integrated film. Performance is governed by coupled factors including interfacial adhesion, film structure, environmental aging, and functional durability. Current challenges extend beyond catalytic activity to include long-term deactivation, coating-substrate interfacial stability, trade-offs among multiple functions, adequacy of evaluation methods, and scalability of fabrication. These issues form a progressive service chain: design determines catalyst exposure and adhesion; environmental stresses induce functional or structural failure; multifunctional integration may compromise one function for another. Therefore, application-oriented evaluation is essential. This perspective advocates for a paradigm shift toward service-oriented design, requiring establishment of service-relevant evaluation protocols and development of scalable, repairable fabrication routes. Such efforts will enable photocatalytic coatings to evolve from high-activity laboratory materials into engineering surfaces that are verifiable, comparable, manufacturable, and durable in real-world applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4290-9
Thermoelectric materials enable direct and reversible conversion between heat and electricity, offering unique advantages for waste heat recovery, solid-state refrigeration, and deep-space power systems. The performance is evaluated by the dimensionless figure of merit, zT = S²σT/κ, where S is the Seebeck coefficient, σ is the electrical conductivity, T is the absolute temperature, and κ is the total thermal conductivity. Achieving high zT requires simultaneous realization of a large power factor (S²σ) and low thermal conductivity. However, these parameters are intrinsically coupled, posing a fundamental challenge. PbTe is a representative thermoelectric material operating in the intermediate temperature range, with outstanding performance originating from its unique electronic band structure featuring multiple nearly degenerate valence band maxima near the L points. Band convergence via alloying with mono-tellurides such as MgTe, MnTe, CdTe, YbTe, SrTe, and EuTe effectively modifies the valence band structure, increasing band degeneracy and density-of-states effective mass, thereby enhancing electrical conductivity without decreasing the Seebeck coefficient. However, increasing the content of these mono-tellurides limits acceptor dopability, making conventional dopants like Na difficult to incorporate. This study demonstrates that co-doping strategies can preserve dopability while achieving band convergence and dislocation engineering, leading to significantly reduced lattice thermal conductivity and extraordinary peak zT values. The decoupling of electronic and thermal transport through this approach offers a promising route for high-performance thermoelectrics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4269-4
Self-assembled molecular interlayers (SAMs) are promising hole-selective contacts for high-efficiency organic solar cells (OSCs) due to their well-defined energy alignment and minimal parasitic absorption. However, their intrinsically limited mechanical robustness often leads to structural degradation and performance loss under mechanical deformation, restricting their application in flexible devices. Here, we report a nanoparticle-reinforced self-assembled composite interface that simultaneously enhances mechanical reliability and optoelectronic performance. Uniformly dispersed SiO2 nanoparticles are introduced as high-modulus reinforcing building blocks without disturbing molecular self-assembly. In contrast to NiOx nanoparticles, which suffer from aggregation and parasitic absorption, SiO2 nanoparticles exhibit excellent dispersion and optical transparency, enabling formation of a structurally compatible hybrid interface. Mechanistic studies reveal that SiO2 nanoparticles redistribute interfacial stress and form dynamic hydrogen-bond networks with phosphonic acid groups of 2PACz, providing efficient energy dissipation during cyclic deformation. Meanwhile, modulation of interfacial polarity extends the crystallization time window of the active layer, resulting in enhanced molecular ordering and improved charge transport. As a result, devices based on the SiO2/2PACz composite interface achieve a power conversion efficiency of 20.14% for rigid devices and 19.30% for flexible devices, placing the flexible devices among the highest-performing flexible OSCs reported to date, while retaining over 90% of their initial efficiency after repeated bending cycles. This work establishes a general strategy for overcoming the trade-off between electronic selectivity and mechanical robustness in ultrathin self-assembled molecular interfaces, providing design insights for high-performance flexible organic optoelectronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4260-5
Lithium-sulfur batteries (LSBs) are recognized as a leading candidate for next-generation energy storage due to their high theoretical specific capacity (1675 mAh g⁻¹). However, the shuttle effect of lithium polysulfides (LiPSs) severely limits cycle life and energy efficiency. Here, we report a multi-interface engineering strategy employing a MnO₂-TiO₂@Ti₃C₂ MXene (MT@MX) heterojunction, synthesized via a facile redox reaction between MXene and KMnO₄, to modulate bidirectional polysulfide conversion. The 2D structure with high conductivity and abundant heterogeneous interfaces facilitates fast ion/electron transfer, reduces reaction energy barriers, and enhances adsorption via d-band center effects. The stepped built-in electric field (BIEF) in MT@MX lowers the migration energy barrier of LiPSs from catalytic MXene to TiO₂ and then to adsorptive MnO₂, enabling reversible migration across multi-interfaces. Optimized heterointerfaces synergistically integrate adsorption, diffusion, and catalytic conversion, yielding excellent cycling stability even at a high sulfur loading of 6.4 mg cm⁻². This work demonstrates that constructing heterojunctions with stepped BIEF offers a feasible approach to modulate interfacial diffusion and provides a new design strategy for high-performance LSB electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4300-3
The power conversion efficiency (PCE) of organic solar cells (OSCs) has surpassed 21% with the donor polymer D18, yet its processing from non-halogenated solvents like ortho-xylene (o-XY) remains inefficient due to uncontrolled film formation kinetics. Here, we systematically synthesize D18 polymers with molecular weights ranging from 41.6 kDa to 70.9 kDa to modulate crystallization kinetics. In-situ film drying studies reveal that lower molecular weights accelerate solidification, leading to excessive aggregation, while higher molecular weights slow it, causing insufficient phase separation. A medium molecular weight (D18-M) achieves a balanced crystallization rate, promoting favorable morphology and yielding a PCE of 20.55% with L8-BO as acceptor—one of the highest reported for non-halogenated solvent-processed OSCs. Energy loss analysis indicates that although low-molecular-weight polymers exhibit higher intrinsic luminescence, the blend film's emission is governed by exciton environment, which is dictated by morphology. This work underscores the critical role of molecular weight in controlling film formation and morphology, offering a simple yet effective strategy for high-efficiency, environmentally friendly OSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4210-6
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 Materials•2026•DOI: 10.1007/s40843-026-4303-7
Sodium-ion batteries (SIBs) are promising for grid-scale storage and low-speed electric vehicles, yet their electrochemical behavior is governed by intricate mechanical-electrochemical coupling effects, rendering failure mechanisms not fully understood. Here, we develop an in-situ pressure-electrochemical monitoring system and reveal the failure mechanism of commercial Ah-level NaNi1/3Fe1/3Mn1/3O2//hard carbon (NNFMO//HC) sodium-ion pouch cells. Under an initial external pressure of 500 kPa, the full cell retains 90.07% of its capacity after 500 cycles at 0.5 C. Operating at the optimal pressure of 500 kPa effectively avoids heterogeneous sodium deposition in HC anodes, suppresses gas evolution from electrolyte decomposition, and prevents irreversible phase transitions in NNFMO cathodes during long-term cycling, thereby mitigating capacity degradation. Deviation from this optimal pressure leads to spatially non-uniform sodium deposition, accelerated electrolyte decomposition, and irreversible cathode phase transitions, collectively accelerating capacity fade. This work establishes a quantitative relationship between external pressure and pouch cell degradation, advancing SIBs development and application.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4319-x
This erratum corrects an error in the Acknowledgments section of the original article 'Investigation on graphene growth by roll-to-roll chemical vapor deposition' published in Science China Materials, Vol. 65, Issue 4, page 1042, 2022. The authors regret that the funding number (No. (2021)105) for the Shenzhen Science and Technology Program was incorrectly used. The correct funding number is No. KQTD20200820113010022. The authors apologize for any inconvenience caused. This correction does not affect the scientific content, results, or conclusions of the original paper. The original research focused on the kinetics of graphene growth via roll-to-roll chemical vapor deposition (CVD), a scalable method for producing high-quality graphene films. The study addressed challenges in continuous manufacturing, such as uniformity, growth rate, and defect control, and provided insights into optimizing process parameters for industrial-scale production. The erratum ensures accurate attribution of funding sources, maintaining the integrity of the research record.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4323-8
Sulfur-based batteries are promising for next-generation energy storage due to high theoretical capacity, natural abundance, and low cost of sulfur cathodes. However, practical implementation is impeded by sluggish sulfur redox kinetics, dissolution and migration of intermediate polysulfides, and formation of insulating discharge products. Conventional catalyst design focuses on charge distribution, adsorption energetics, and structural confinement, yet these approaches incompletely describe the complex electronic processes governing sulfur conversion. Electron spin, an intrinsic quantum degree of freedom, offers an additional dimension for modulating catalytic behavior via its influence on electronic structure and orbital interactions at catalytic interfaces. In spin-polarized systems, changes in occupation and splitting of transition-metal d orbitals can regulate d-p hybridization with sulfur species, affecting interfacial charge transfer and energetics of sulfur redox reactions. This review summarizes recent progress in elucidating and manipulating electron spin in sulfur-based battery systems. Fundamental principles connecting spin states with electronic structure and catalytic behavior are outlined, followed by experimental approaches for probing spin-related electronic properties using spectroscopic and magnetic characterization techniques. Emerging strategies for spin regulation are highlighted, including heteroatom doping, defect engineering, coordination environment modulation, chirality-induced spin selectivity, and external magnetic-field control. Remaining challenges in identifying spin effects under realistic electrochemical conditions are addressed, along with opportunities for integrating spin-related descriptors into catalyst design. Establishing quantitative relationships between spin polarization, orbital hybridization, and sulfur reaction pathways may provide new perspectives for high-performance sulfur-based batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4246-5
Developing organic solar cells (OSCs) processable from green solvents without additives or post-treatments is essential for sustainable manufacturing, yet high power conversion efficiency (PCE) remains difficult due to limited morphology control. Herein, we develop a new electron-deficient building block, dithiazolo[4',5':3,4;5'',4'':5,6]benzo[1,2-d][1,2,3]triazole (DTzBT), which fuses benzo[d][1,2,3]triazole (BTA) with thiazole to leverage S/N-mediated non-covalent interactions, enhance planarity and lower the HOMO. To isolate side-chain effects, two DTzBT-based donors, namely PTzMe-F (N-methyl) and PTzEH-F (N-2-ethylhexyl), have been designed and synthesized. PTzMe-F exhibits poor solubility and miscibility with L8-BO, yielding 2.64% PCE (chloroform). PTzEH-F exhibits excellent processability and favorable morphology, delivering 17.61% PCE (chloroform) and 19.17% as-cast from toluene without any additive or post-treatments. In addition, the ternary LbL device based on PTzEH-F/L8-BO:PC71BM achieved an impressive efficiency of 20.27%. Comprehensive characterization indicates that 2-ethylhexyl side chains afford optimal solubility while preserving strong intermolecular interactions and favorable phase separation. DTzBT mitigates BTA’s HOMO-raising tendency via electron-withdrawing thiazole fusion, reconciling aggregation tunability with energy-level control. These results show that precise backbone and side-chain co-design enables green-solvent, additive-free processing for high-performance OSCs, advancing sustainable photovoltaic manufacturing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4339-7
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 Materials•2026•DOI: 10.1007/s40843-026-4340-0
Thin films with nonreciprocal circularly polarized luminescence (CPL) emit circularly polarized light with opposite handedness from its two opposite sides, holding great promise for advancing optical multiplexing technologies. Herein, we introduce component orientation mismatch into chiral composite films via stretching, which leads to macroscopic optical anisotropy and accordingly drives the films to show nonreciprocal CPL activity. Stretching triggers linear dichroism-linear birefringence (LD-LB) coupling to realize nonreciprocal circular dichroism (CD) in elastomer films consisting of thermoplastic polyurethane (TPU) and chiral polyacetylene (R/S-PSA). Moreover, fluorescence anisotropy-linear birefringence (f-LB) coupling occurs after introducing fluorescent groups into the films to achieve multi-color nonreciprocal CPL. The unstretched films exhibit reciprocal CPL with a luminescence dissymmetry factor (|glum|) of 10⁻¹, with handedness determined by PSA’s intrinsic helical chirality. In the stretched films, the oriented fluorescent groups undergo f-LB coupling with matrix crystallization, resulting in nonreciprocal CPL (|glum|=10⁻²). Based on this distinctive chiroptical feature, we have developed chiral logic gates, multidimensional optical encryption systems, and enantioselective photopolymerization platforms to demonstrate the potential uses of the as-obtained CPL films. This work provides both fundamental insights into and a versatile material platform for developing smart nonreciprocal photonic systems with advanced chiroptical functionality.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4250-0
Shape memory polymer (SMP)-based transfer printing offers a promising route for heterogeneous integration of flexible electronics, yet non-contact release reliability remains a critical bottleneck. This study systematically investigates the influence of pickup heating modes—localized versus global—on the release yield and energy-delivery mechanisms through combined experiments and finite element simulations. The localized heating mode concentrates strain energy at the interface, enabling controlled chip ejection with high yield, whereas global heating dissipates energy, leading to release failure. Quantitative analysis reveals that localized heating achieves a release yield of 100% under optimized conditions, compared to near-zero for global heating. The ejection velocity under localized heating is higher, which may induce chip bouncing on the receiver substrate, affecting transfer accuracy; however, this can be mitigated by adjusting release gap and laser parameters. The findings establish a theoretical framework for energy pathway design, providing guidelines for achieving high-yield, accurate non-contact release in laser-induced transfer printing. This work advances the practical application of SMP-based transfer printing for micro-LED displays and flexible electronics, addressing a key manufacturing bottleneck.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4344-5
Germanium-based materials (Ge-based) have been explored as anodes for potassium-ion batteries (PIBs) due to their high theoretical capacity (369 mAh g-1) and moderate potassium insertion potentials. However, their application is hindered by volume expansion and unstable solid electrolyte interphase films. This review systematically synthesizes recent advances in Ge-based materials (encompassing metallic Ge, oxides, chalcogenides, and alloys), with an emphasis on structure-performance relationships to elaborate synergistic optimization strategies. Key optimization strategies such as nanostructuring, composite design with conductive supports, interfacial engineering, doping, and electrolyte modification are elaborated. The potassium storage mechanisms of different materials are compared, and the effectiveness of various modification strategies is evaluated under different operating conditions. High-throughput computations are integrated with experimental validation to guide material and electrolyte design. A life cycle assessment perspective is also introduced to evaluate the sustainability and practical viability of Ge-based materials. Given the high cost and low abundance of Ge, these materials are more suitable for niche applications where high energy density is critical, rather than large-scale grid storage. The review underscores the necessity of balancing electrochemical performance with economic and environmental considerations, proposing a roadmap for future research that prioritizes cost-effective synthesis and scalable manufacturing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4242-1
Infected bone defects remain a formidable clinical challenge due to the coupled pathologies of bacterial infection and impaired osteogenesis. Conventional treatments often fail to address the dynamic microenvironment, leading to persistent infection and inadequate bone repair. Here, we report a microenvironment-adaptive hydrogel incorporating a Ti3C2Tx MXene-based coordination nanoreactor that orchestrates an immune-osteogenic cascade. The nanoreactor, constructed by coordinating Fe3+ ions onto MXene nanosheets, exhibits pH- and reactive oxygen species (ROS)-responsive release of Fe3+ and MXene, enabling sequential antibacterial and pro-osteogenic activities. In vitro studies demonstrated that the hydrogel eradicated Staphylococcus aureus and Escherichia coli (>99.9% killing) within 6 h via synergistic photothermal and chemodynamic effects, while simultaneously scavenging excess ROS to mitigate oxidative stress. Notably, the released Fe3+ ions promoted M2 macrophage polarization, as evidenced by a 2.5-fold increase in CD206 expression, and subsequently enhanced osteogenic differentiation of bone marrow mesenchymal stem cells (BMSCs), with alkaline phosphatase activity elevated by 1.8-fold and alizarin red staining intensity increased by 2.2-fold. In a rat model of infected calvarial defects, the hydrogel significantly accelerated bone regeneration, achieving a bone volume fraction of 78.4% at 8 weeks post-implantation, compared to 35.2% in the untreated control. Micro-CT and histological analyses confirmed robust new bone formation and complete infection clearance. This study presents a paradigm for designing adaptive biomaterials that integrate infection control and bone regeneration, offering a promising strategy for treating infected bone defects.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4202-3
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 Materials•2026•DOI: 10.1007/s40843-026-4354-9
This review systematically examines the synthesis-structure-property relationships of hybrid graphene and carbon fiber reinforced composites, encompassing polymer, metal, and ceramic matrix systems. The hybridization of graphene with carbon fibers addresses the intrinsic limitations of conventional composites, such as weak interfacial bonding and insufficient multifunctionality. The review consolidates recent advances in fabrication strategies, including electrophoretic deposition, layer-by-layer assembly, and precursor impregnation, which enable controlled graphene distribution and orientation. Critical analyses of mechanical, tribological, electrochemical, and anti-ablation properties reveal that graphene addition significantly enhances interfacial shear strength, thermal stability, and electrical conductivity. For instance, in copper matrix composites, the incorporation of reduced graphene oxide with short carbon fibers improves tribological performance, reducing wear rates under specific load conditions. In ceramic matrix composites, graphene-modified C/C-SiC composites exhibit superior anti-ablation resistance, with mass loss rates reduced by up to 30% at elevated temperatures. Furthermore, graphene-coated carbon fiber electrodes demonstrate high specific capacitance and cycling stability in energy storage applications. The review also addresses challenges such as dispersion uniformity, scalability, and cost-effectiveness, proposing future directions for industrial adoption. By providing a comprehensive framework, this work guides the design of next-generation hybrid composites tailored for aerospace, automotive, and energy storage sectors.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4373-2
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 Materials•2026•DOI: 10.1007/s40843-026-4342-3
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.