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Verified CAS / Academic Author100 Decoded Studies

Prof. Zhang Zhang

Chinese Academy of Sciences & Key Academic Laboratories

Research Publications & English Decoded Briefs

Showing 100 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4346-y

Microenvironment-responsive therapeutic platforms: Innovations for spinal cord injury repair

Spinal cord injury (SCI) remains a formidable clinical challenge due to the complex, dynamic lesion microenvironment that impedes axonal regeneration and functional recovery. This highlight examines a microenvironment-responsive therapeutic platform integrating microneedle delivery, ferroptosis modulation, and hydrogen therapy. The platform leverages the pathological hallmarks of SCI—oxidative stress, iron dyshomeostasis, and lipid peroxidation—to achieve spatiotemporally controlled cargo release. By combining microneedle arrays for minimally invasive intraparenchymal administration with hydrogen-releasing biomaterials, the system addresses the dual bottlenecks of poor drug penetration across the blood-spinal cord barrier and insufficient neutralization of reactive oxygen species. Ferroptosis inhibition is achieved through iron chelation and glutathione peroxidase 4 (GPX4) stabilization, while hydrogen gas scavenges hydroxyl radicals and peroxynitrite. This multimodal strategy attenuates secondary injury cascades, reduces glial scar formation, and promotes neural stem cell differentiation. The work is supported by the National Natural Science Foundation of China (82574518) and the Talent Cultivation Project of Paring Academicians with Young Talents in higher education institutions in Zhejiang. The authors declare no conflict of interest. This highlight underscores the translational potential of microenvironment-responsive platforms for SCI repair, emphasizing the need for rigorous preclinical validation and scalable manufacturing.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4500-8

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4312-8

Polymer-templated Molecular Ordering of Hole Transport Layers Enables High Efficiency and Stable Organic Photovoltaics

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 Materials2026DOI: 10.1007/s40843-026-4464-9

Vortex-mediated piezoelectric enhancement in bulk ferroelectrics

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 Materials2026DOI: 10.1007/s40843-026-4479-8

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4467-x

Ultra-flexible Transparent Self-powered Triboelectric Sensors for Eyelash-Guided Human-Machine Interaction

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 Materials2026DOI: 10.1007/s40843-026-4343-7

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4248-2

Selenonium-Catalyzed Dynamic Siloxane Exchange for PDMS-Vitrimer Coatings

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 Materials2026DOI: 10.1007/s40843-026-4418-7

A Biomimetic Nanocomposite Co-delivering Carbon Dots and Indoximod for Synergistic Immunochemotherapy of Glioblastoma

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 Materials2026DOI: 10.1007/s40843-026-4267-y

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

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

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

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

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

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

Rational Design of Oxygen Electrocatalysts Guided by Reaction Intermediates

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4412-y

Local van der Waals gaps and resonant levels enhance thermoelectric performance of lead-free GeTe

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 Materials2026DOI: 10.1007/s40843-026-4498-7

2D Porphyrin-Based Conjugated Hypercrosslinked Polymer Integrated with CuO for Efficient CO2 Electroreduction

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 Materials2026DOI: 10.1007/s40843-026-4432-9

Medium Entropy Tuning Improved Multiple Electron Redox in Polyanion Cathode for High-Rate Sodium-Ion Battery

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 Materials2026DOI: 10.1007/s40843-026-4391-5

Simultaneous Modulation of Interfacial Dipole and Film Kinetics via Self-Assembled Monolayers for Low-Energy-Loss Organic Photovoltaics

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 Materials2026DOI: 10.1007/s40843-026-4321-x

Lewis Acid and Hydroxyl Enabled PEO Electrolytes for Solid-State Lithium Metal Batteries

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 Materials2026DOI: 10.1007/s40843-026-4351-8

Nonlinear optical response and broadband self-powered polarization-sensitive photoresponse in low-symmetric TeSe2

Breaking intrinsic structural symmetry is a fundamental prerequisite for pronounced nonlinear optical responses. Low-symmetry semiconductors with inherent anisotropy enable self-powered optoelectronic conversion and polarization-sensitive functionalities. This work reports the synthesis of low-dimensional van der Waals chain TeSe2 crystals with intrinsic inversion and C3 symmetry breaking. Angle-resolved polarized Raman spectroscopy and second-harmonic generation measurements confirm crystalline anisotropy and nonlinear optical performance. Electrical transport studies reveal p-type conduction with a room-temperature field-effect mobility of 122 cm2 V-1 s-1. The TeSe2 photodetector achieves self-powered detection and linearly polarized light detection across 405–1064 nm, with a photoresponsivity of 77.3 mA/W at 532 nm. The linear photogalvanic effect response is effectively modulated by gate voltage. Density functional theory calculations attribute p-type doping to Te and Se vacancies, while the nonlinear optical origin is linked to strong Berry curvature. Applications in polarization encoding communication and polarization imaging are demonstrated, indicating potential for low-energy-consuming, highly sensitive, on-chip integrated linear polarized photodetectors.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4471-6

Beyond direct excitation: advancing photochromism via triplet sensitization

Triplet sensitization, inspired in part by the natural management of triplet-state energy in photosynthetic systems, has emerged as a transformative strategy for overcoming the intrinsic photophysical limitations of photochromic systems driven by direct excitation, including rapid fatigue, inefficient photoconversion, and the stringent requirement for high-energy ultraviolet light. By exploiting triplet excited states and Dexter-type triplet–triplet energy transfer (TET), this strategy enables red-shifted activation and improved switching performance under milder irradiation conditions. This review summarizes recent advances in triplet-sensitized photochromism across two mechanistic platforms, E/Z isomerization (azobenzenes and overcrowded-alkene molecular motors) and electrocyclization (diarylethenes), examining the full range of triplet sensitizers employed to date, from metalloporphyrins, organic chromophores, and semiconductor quantum dots to metal-to-ligand charge-transfer (MLCT) and charge-transfer complexes (CTCs). Finally, we examine the key challenges of directional control, structural organization, and efficient long-wavelength sensitization, while discuss emerging strategies that may promote triplet-sensitized photochromism as a versatile platform for next-generation photoresponsive materials and light-controlled biomedicine.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4420-7

Visualizing the evolution of atomic-scale Cu+ migration path in Cu2-xSe thermoelectric materials by in situ high-resolution neutron diffraction

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 Materials2026DOI: 10.1007/s40843-026-4425-4

Dynamically color-tunable electroluminescent fiber device achieving 131.07% sRGB color gamut coverage

Flexible and weavable alternating-current electroluminescent (ACEL) fiber devices are pivotal for wearable displays and human-computer interfaces, yet their intrinsic lack of color tunability restricts high-density information interaction. This study presents a dynamically color-tunable electroluminescent fiber device with a coaxial winding structure that integrates multiple fiber electrodes emitting the three primary colors. Through simple voltage driving, the device achieves a color gamut covering 131.07% of the sRGB standard, enabling arbitrary full-color tunability, including standard white light with CIE coordinates of (0.31, 0.33). The emission peak is continuously tunable over a 161.7 nm range, a 4-fold enhancement compared to previously reported ACEL fibers. The coaxial winding architecture is compatible with large-scale fabrication, yielding hundred-meter-scale fiber devices with a luminance variation of only 2.76%. The electroluminescent performance remains stable under stringent industrial standards: 10,000 friction cycles, 20 accelerated washing cycles, and 10-day storage at 105 °C and −20 °C. Integration into a smart textile watchband demonstrates real-time heart rate visualization via progress color changes and gesture-controlled color switching, validating its potential as an effective human-computer interface.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4395-x

Iron-Induced Bidirectional Catalytic Effects for Sulfur Redox Reactions in Lithium–Sulfur Batteries

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 Materials2026DOI: 10.1007/s40843-026-4480-1

Side-Chain-Engineered Guest Acceptor Synchronously Optimizes Vertical Phase Separation and Non-radiative Loss in Organic Solar Cells

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 Materials2026DOI: 10.1007/s40843-026-4466-3

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4447-3

Observation of Chargeable Photoconductivity in Bi0.85La0.15FeO3/Q2DEG-Based Multiferroic Heterostructure

Chargeable photoconductivity, a non-volatile photoresponse phenomenon, was investigated in multiferroic heterostructures comprising Bi0.85La0.15FeO3 (BLFO) and a quasi-two-dimensional electron gas (Q2DEG). Two device architectures, LSMO/BLFO/Q2DEG and Pt/BLFO/Q2DEG, were fabricated and characterized under varying electrical connection conditions between the top electrode and the Q2DEG during illumination and dark waiting stages. Current-voltage (I-V) measurements reveal that the heterostructures exhibit persistent photoconductivity after illumination, with the magnitude and retention dependent on the circuit configuration. Under open/open conditions, the photocurrent increases with illumination duration, and subsequent dark waiting leads to a gradual decay, indicating charge storage and release mechanisms. The LSMO/BLFO/Q2DEG heterostructure demonstrates superior chargeable photoconductivity compared to the Pt counterpart, attributed to the oxygen vacancy migration and interfacial polarization effects. These findings establish a foundation for oxide-based photoelectric memory devices with potential for low-power, non-volatile optoelectronic applications. The results provide critical insights into the interplay between ferroelectric polarization, oxygen vacancy dynamics, and charge trapping at the BLFO/Q2DEG interface, offering a pathway for designing advanced multiferroic optoelectronic devices.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4477-7

Macrocycle-Based Solid-State Lithium Electrolytes: Supramolecular Strategies and Ion-Transport Regulation

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 Materials2026DOI: 10.1007/s40843-026-4309-8

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4483-x

Narrow-Bandgap Acceptors with Low Energetic Disorder Achieve over 21% Efficiency in Organic Solar Cells

The referenced literature comprises five peer-reviewed studies published between 2025 and 2026 in Nature Materials, Journal of the American Chemical Society, Nature Communications, and Science China Materials. These works collectively address the persistent trade-off between open-circuit voltage (Voc) and short-circuit current density (Jsc) in organic photovoltaics (OPVs). Tao et al. (Nat Mater, 2026) demonstrate that narrow-bandgap nonfullerene acceptors engineered to exhibit low energetic disorder achieve power conversion efficiencies (PCEs) exceeding 21%, primarily by suppressing non-radiative recombination losses. Westbrook et al. (JACS, 2025) establish that solid-state packing motifs govern exciton delocalization and photophysics in nonfullerene acceptors, providing a structural handle for reducing energetic disorder. Jiang et al. (Nat Commun, 2025) show that photoluminescent delocalized excitons in donor polymers facilitate efficient charge generation, linking exciton coherence to device performance. Zhang et al. (Nat Commun, 2026) employ synergistic steric hindrance and chlorination to realize binary OSCs with low energy loss, achieving high Voc without sacrificing photocurrent. The cumulative findings indicate that molecular design strategies targeting low energetic disorder and controlled solid-state packing can overcome the longstanding efficiency ceiling of ~20% in OPVs. These results have direct implications for the commercial viability of solution-processed, lightweight, and flexible solar cells, though scalability and long-term stability remain to be validated under industrial manufacturing conditions.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4426-y

Advances toward stress-assisted degradation of biomedical Mg alloys

Biomedical Mg alloys are candidate biodegradable metals for orthopedic and cardiovascular implants, yet their in vivo service life is governed by coupled mechanical-chemical attack that accelerates loss of mechanical integrity. This review consolidates recent advances in stress-assisted degradation of Mg alloys under physiological conditions, focusing on stress corrosion cracking (SCC), flow-induced corrosion, and corrosion fatigue. Biomechanical-chemical coupling test methods are assessed for their capacity to reproduce physiological loading, fluid shear, and electrolyte chemistry. Mechanistic pathways are analyzed, including anodic dissolution, hydrogen-induced cracking, passivation film rupture, and flow-induced shear stress. Modification strategies for enhancing resistance to stress-assisted degradation are categorized into alloying design, microstructure regulation, and surface treatments. The review further evaluates computer-aided predictive models and multi-physics coupling frameworks that link pit-to-crack transitions, phase-field damage localization, and mechano-chemical peridynamics. Empirical data from the cited literature demonstrate that SCC and corrosion fatigue in chloride-containing media reduce fatigue strength by 40–70% relative to air, while flow-induced shear stresses above approximately 1 Pa disrupt protective films and elevate degradation rates. These findings establish quantitative benchmarks for alloy design and surface engineering. The review concludes that integrating multi-physics modeling with physiologically relevant testing is essential for predicting implant service stability and accelerating clinical translation of high-performance biomedical Mg alloys.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4263-3

Anisotropic Strain Tunable Near-Infrared Exciton Emission in Phosphorene

Monolayer black phosphorus (phosphorene) exhibits a direct bandgap and strong in-plane anisotropy, making it a promising candidate for near-infrared (NIR) optoelectronic devices. However, the precise modulation of its excitonic emission via anisotropic strain remains insufficiently understood, particularly regarding the contrasting strain responses of phosphorene versus transition metal dichalcogenides (TMDs). Here, we combine experimental characterization with tight-binding (TB) modeling to elucidate the strain-dependent bandgap evolution in phosphorene. Using a four-band TB model, we derive the bandgap at the Γ point as E_g^BP = 4t1 + 2t2 + 4t3 + 2t5, with hopping parameters t1 = -1.220 eV, t2 = 3.665 eV, t3 = -0.205 eV, t4 = -0.105 eV, and t5 = -0.055 eV. Under tensile strain along the zigzag (ZZ) direction, the interatomic distance associated with t1 increases, reducing the magnitude of |t1|. Since t1 is negative, the bandgap increases, contrary to the behavior of monolayer MoS2, where tensile strain decreases the bandgap due to positive hopping parameters t11, t22, and t12. This anisotropic strain response enables selective tuning of NIR exciton emission. Our findings provide a quantitative framework for strain engineering in phosphorene-based NIR devices, highlighting the critical role of hopping parameter signs in determining bandgap modulation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4283-0

Viologen-Based Multi-Responsive Ionogels for Thermal Regulation Smart Windows and Encrypted Data Storage

Smart windows are critical for building energy conservation, yet existing technologies cannot simultaneously satisfy the diverse requirements of light transmission, thermal insulation, and privacy protection across varying scenarios, such as daytime transparency and nighttime heat retention with opacity. Herein, we report a thermo- and electro-responsive ionogel fabricated via one-step photopolymerization, integrating the electrochromic viologen derivative (Pa-PhV)(TFSI)2 with a thermoresponsive matrix. The (Pa-PhV)(TFSI)2 delivers excellent electrochromic performance, featuring dual-band light modulation, a high coloration efficiency of 433.6 cm2 C-1, and a fast coloration time of 2.52 s. The ionogel exhibits three stable switchable states under thermal and electrical regulation, fulfilling core practical demands for full-spectrum photothermal management. Model house tests verify its excellent seasonal adaptability, with a maximum indoor temperature reduction of up to 15 °C in a simulated summer environment. Furthermore, the ionogel enables dual-encrypted data storage via UCST and voltage triggering. This work broadens the application scope of viologen derivatives and offers a competitive strategy for multifunctional smart windows and encrypted data storage.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4487-1

Electronic structure modulation of NiIr(OH)6 perovskite hydroxide for chlorine-resistant electrolytic seawater

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.

Nano Research Energy2026DOI: 10.26599/NRE.2025.9120181

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

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

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4495-3

Appropriately Rigid Ionic Confinement for Dynamic Organic Room-Temperature Phosphorescence via Triplet Exciton Competition

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 Materials2026DOI: 10.1007/s40843-026-4272-3

Rare Earth Dilute Alloys Unlock Fast Water Dissociation for Alkaline Hydrogen Evolution

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 Materials2026DOI: 10.1007/s40843-026-4502-1

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4299-9

Orchestrating Band Structures via Synergistic B and S Doping to Construct S-scheme g-C3N4 Homojunctions for Boosted Photocatalytic H2 Production

A dual-doping strategy incorporating boron (B) and sulfur (S) into graphitic carbon nitride (g-C3N4) was employed to engineer band structures and construct an S-scheme homojunction (BSCN) for enhanced photocatalytic hydrogen (H2) evolution. The BSCN catalyst exhibited an interwoven architecture of porous nanotubes and nanosheets, providing a large specific surface area and abundant active sites. In situ X-ray photoelectron spectroscopy (XPS) and density functional theory (DFT) calculations revealed an S-scheme charge transfer mechanism at the BCN/SCN interface, driven by a built-in electric field that facilitates efficient spatial separation of photogenerated charge carriers. Photoelectrochemical measurements confirmed improved light harvesting and charge separation. DFT simulations indicated near-thermoneutral hydrogen adsorption free energy (ΔGH* = 0.12 eV) at S-doped sites, favorable for hydrogen evolution reaction (HER) kinetics. The optimized BSCN achieved an exceptional H2 evolution rate of 14.409 mmol g−1 h−1, approximately 75-fold and 3.4-fold higher than pristine BCN and SCN, respectively. This work establishes a rational doping-mediated approach for designing high-efficiency g-C3N4 homojunctions and provides mechanistic insights into S-scheme charge transfer for solar-driven H2 production.

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

Emergent Strain Engineering of Freestanding Oxide Membranes

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4240-7

Electrocatalytic Ammonia Oxidation Reaction: From Active Site Regulation to Industrial Device Systems

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 Materials2026DOI: 10.1007/s40843-026-4285-2

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4281-7

Multilayer Visible/Infrared Camouflage Electromagnetic Shielding Composite via Synergistic Spectral Regulation and Thermal Management

Multispectral camouflage materials must simultaneously address visible and infrared (IR) detection while maintaining environmental stability and mechanical flexibility for deployment in harsh conditions. This work presents a multilayer composite integrating a colorful, IR-transparent visible reflection (VR) layer, a low-emissivity graphene (LEG) layer, and an aramid nanofiber (ANF) aerogel layer. The VR layer provides tunable visible colors without compromising the low-emissivity property of the LEG layer, which achieves IR emissivity between 0.30 and 0.43. The ANF aerogel, reinforced with a grid structure, reduces thermal conduction, lowering IR radiation intensity by 40% at an 80 °C heat source. The composite exhibits effective electromagnetic interference (EMI) shielding and maintains multifunctional stability in strong acid, strong alkali, saline, and organic media. This design offers a novel strategy for environmentally robust multispectral camouflage materials suitable for extreme operational environments.

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4269-4

Nanoparticle-Reinforced Self-Assembled Molecular Interfaces Enable Mechanically Robust Flexible Organic Solar Cells

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 Materials2026DOI: 10.1007/s40843-026-4260-5

Multi-Interface Engineering Modulated Bidirectional Polysulfide Conversion for Advanced Lithium-Sulfur Batteries

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 Materials2026DOI: 10.1007/s40843-026-4300-3

Molecular Weight Engineering of D18 Polymer Enables 20.55% Efficiency in Non-Halogenated Solvent-Processed Organic Solar Cells via Controlled Film Formation Kinetics

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 Materials2026DOI: 10.1007/s40843-026-4239-2

Amino Acid Intercalated Iron-Rich NiFe-LDHs with Low-Spin Fe3+ for Oxygen Evolution Reaction Electrocatalysis

The sluggish kinetics of the oxygen evolution reaction (OER) remains a bottleneck for efficient water splitting. NiFe-layered double hydroxides (LDHs) are promising OER catalysts, but their performance is often limited by the high-spin state of Fe3+ and poor structural stability. Here, we report a series of amino acid-intercalated iron-rich NiFe-LDHs (AA-NiFe-LDHs) synthesized via a facile one-step coprecipitation method. Intercalation of glycine, alanine, and valine into the interlayer galleries expands the interlayer spacing and induces a partial transition of Fe3+ from high-spin to low-spin state, as confirmed by X-ray absorption spectroscopy and Mössbauer spectroscopy. The low-spin Fe3+ enhances the intrinsic catalytic activity by optimizing the adsorption energy of oxygen intermediates. Among the series, the glycine-intercalated sample (Gly-NiFe-LDH) exhibits the best OER performance in 1.0 M KOH, with an overpotential of 240 mV at 10 mA cm−2 and a Tafel slope of 38 mV dec−1, significantly outperforming the pristine NiFe-LDH (280 mV, 52 mV dec−1). Moreover, Gly-NiFe-LDH shows excellent long-term stability, retaining 95% of its initial activity after 24 h of chronopotentiometry at 10 mA cm−2. The intercalation also increases the electrochemically active surface area by 2.3-fold and reduces the charge transfer resistance from 12.5 Ω to 4.8 Ω. This work demonstrates that amino acid intercalation is an effective strategy to modulate the spin state of Fe3+ and enhance the OER performance of NiFe-LDHs, providing a new avenue for designing high-efficiency, low-cost electrocatalysts.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4204-4

Heterodimensional Superlattices: Preparation, Properties, and Applications

Heterodimensional superlattices, integrating materials of different dimensionalities (e.g., 0D, 1D, 2D) within a periodic structure, have attracted significant attention due to their unique electronic structures and emergent properties arising from inter-dimensional coupling. This review comprehensively summarizes the state-of-the-art preparation strategies, distinctive physical properties, and diverse applications of these emerging systems. Beyond conventional epitaxial growth and chemical intercalation methods, recent advances include van der Waals assembly and phase engineering, enabling precise control over layer stacking and interfacial interactions. Key properties discussed include tunable electronic band structures, enhanced spin-orbit coupling, and emergent phenomena such as the in-plane Hall effect, which are promising for spintronic devices. The review also highlights applications in energy storage and conversion, where heterodimensional superlattices exhibit improved ion transport and catalytic activity. Challenges remain in scalable fabrication and structural stability, but the field holds potential for next-generation electronics and energy technologies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4250-0

Heating-mode-defined energy pathways govern non-contact release in shape memory polymer transfer printing

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 Materials2026DOI: 10.1007/s40843-026-4350-4

Deep Learning-Enabled Auxetic Textile Sensors for Physiological Monitoring and Soft Robotics

Flexible wearable sensors have transformed motion tracking, soft robotics, and human-machine interfaces by enabling precise movement detection and adaptability to curved surfaces. However, conventional composite sensors often face challenges such as limited sensitivity, detection range, linearity, and durability. In this study, we propose a stretchable auxetic sensing textile with a negative Poisson’s ratio (NPR) structure, incorporating reduced graphene oxide (rGO) and carbon nanotubes (CNT) by micro-crack engineering to enhance its mechanical durability and sensing performance. Integrating macro-scale NPR with micro-scale wrinkles, this innovative design achieves a high sensitivity of 11.2 within a wide detection range (0-100%), a more linear sensing range with an R2 value of 0.998, an ultra-low detection limit of 0.5%, and exceptional durability, outperforming conventional wearable sensors. Additionally, the textile sensor boasts excellent moisture permeability (32.7 g m⁻² h⁻¹) and a remarkable NPR value of -0.25, ensuring comfort and adaptability for various wearable applications. Integrated with deep learning algorithms, the auxetic sensing textile demonstrates 98% accuracy in recognizing soft robotic movements at various bending angles. It is capable of capturing both small-scale physiological signals, such as electrocardiograms, and large-scale movements, offering significant freedom of movement and adaptability to complex surfaces.

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4354-9

Hybrid graphene and carbon fiber reinforced composites: Synthesis-structure-property relationships

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 Materials2026DOI: 10.1007/s40843-026-4342-3

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

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

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

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

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

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

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

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

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4385-1

Homogeneous Dip-Coating of Ion-Modulated Self-Assembled Monolayers for Large-Area Perovskite Photovoltaics

Self-assembled monolayers (SAMs) are effective hole-selective contacts for inverted perovskite solar cells, but scalable deposition on rough substrates is hindered by molecular aggregation, disordered packing, and incomplete adsorption. We propose a hybrid strategy incorporating 4-(Piperidin-4-yl)butanoic acid hydrochloride (PBACl) into the 4PABCz solution during dip-coating. PBACl suppresses aggregation via hydrogen bonding and ionic interactions, yielding homogeneous coverage and improved wettability. The piperidine and carboxyl groups passivate buried interfacial defects through hydrogen bonding and coordination with perovskites. Small-area cells achieve a champion power conversion efficiency (PCE) of 26.09%, while a 5 cm × 5 cm mini-module (aperture area 14.4 cm²) delivers 23.29% PCE. Encapsulated devices retain 80% of initial PCE after 1350 h maximum power point tracking under continuous illumination. This ion modulation strategy bridges molecular-level interface control with scalable processing, offering a pathway to industrially relevant perovskite photovoltaics.

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4262-7

Single-gate reconfigurable multifunctional devices based on anti-ambipolar van der Waals heterojunctions

The escalating demands of artificial intelligence, machine learning, and neural computing necessitate multifunctional optoelectronic devices capable of integrating sensing, memory, and processing. Two-dimensional van der Waals heterostructures (vdWHs) offer unique advantages, yet their practical deployment is hindered by complex architectures and inefficient mode-switching. Here, we demonstrate a MoTe2/SnS2 anti-ambipolar heterojunction device enabling single-gate reconfiguration among frequency doubling, broadband photodetection, and neuromorphic computing. The device exhibits a peak-to-valley ratio (PVR) of 465, ensuring efficient frequency doubling. As a photodetector, it operates across an exceptionally broad spectral range of 520–2200 nm, with outstanding responsivity and detectivity. Furthermore, the device emulates complete synaptic behaviors, including short-term plasticity (STP), long-term plasticity (LTP), and paired-pulse facilitation (PPF). Integrated into a reservoir computing (RC) system trained on a vehicle motion dataset, it achieves a directional recognition accuracy of 98.7%. This work establishes a paradigm for multifunctional integration and low-power neuromorphic computing, advancing next-generation intelligent optoelectronic systems.

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4315-2

Ultra-high-crystallinity transparent glass-ceramic scintillators for high-temperature X-ray imaging

High-temperature X-ray imaging demands scintillators with high crystallinity, efficient scintillation, and robust thermal stability, yet suitable materials remain scarce. Here, we report an ultra-high-crystallinity transparent glass-ceramic (GC) scintillator strategically designed via controllable heat-treatment-induced crystallization. A sequential precipitation method is employed, where cubic CaF2 nanocrystals initially form, subsequently promoting heterogeneous nucleation and growth of hexagonal BaAl2Si2O8. Intrinsic nanoscale phase separation into F-rich and O-rich domains significantly reduces atomic diffusion distances, yielding an unprecedented crystallinity of up to 97.6%. Notably, defect traps (oxygen vacancy defects, likely located within the lattice or at crystalline/amorphous interfaces) enable efficient carrier capture and thermally stimulated release, contributing to remarkable resistance to thermal quenching. Consequently, the GC scintillator maintains 90.6% of its integrated X-ray excited luminescence (XEL) intensity at 300 °C, with the integrated XEL intensity reaching 94.2% of commercial Bi4Ge3O12 (BGO) at room temperature. This enables stable high-temperature X-ray imaging with a spatial resolution of ~10.4 lp mm−1 up to 225 °C. This work provides a versatile pathway for developing high-sensitivity scintillators for extreme-environment X-ray imaging.

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

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

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

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4235-6

High Resistive Switching On/Off Ratio in Lu-Doped Hf0.4Zr0.6O2 Thin Films via Band Structure and Oxygen Vacancy Co-Strategy

Fluorite-structured oxides (HfO2, ZrO2) are promising for resistive random-access memory (RRAM) due to their scalability and tunable properties. However, achieving high resistive switching on/off ratios remains challenging. Here, we report a collaborative strategy combining Hf/Zr ratio optimization and Lu3+ doping to regulate band structure and oxygen vacancy concentration in Hf0.4Zr0.6O2 (LHZO) thin films. The resulting LHZO devices exhibit a resistive switching ratio of 8.4 × 10^4, two orders of magnitude higher than that of ZrO2 (1.2 × 10^3). Electrical characterization and synchrotron radiation photoemission spectroscopy reveal that Lu doping widens the bandgap to 4.95 eV, downshifts the valence band, and introduces defect states, collectively suppressing p-type conductivity and reducing off-state leakage current. Simultaneously, Lu3+ doping enriches oxygen vacancies, stabilizing ohmic conductive filaments in the on-state. This co-optimization of band structure and oxygen vacancies effectively enhances insulating properties in the high-resistance state and ohmic conductivity in the low-resistance state, leading to superior resistive switching performance with robust retention (>10^4 s). Our findings establish a fundamental strategy for tailoring electronic properties of doped HfZrO2 thin films toward high-performance RRAM applications.

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4316-0

Asymmetric Small Molecule Acceptors for Organic Photovoltaics: Insights from Multiple Perspectives

The rapid development of small molecule acceptors (SMAs) has enabled organic photovoltaics (OPVs) to achieve power conversion efficiencies exceeding 21%. Structural asymmetry has emerged as a particularly effective approach for boosting acceptor performance. This review provides a comprehensive overview of asymmetric SMAs from the molecular scale to the nanoscale and macroscale. The main text is organized into four sections: molecular design strategies for structural asymmetry, crystal structure evolution from symmetry breaking, morphological characteristics revealed by advanced characterization techniques, and energy loss mechanisms involving asymmetric SMAs. At the molecular scale, asymmetry enables precise modulation of dipole moments and intermolecular interactions, directly affecting crystalline packing and charge-transport networks. At the nanoscale, it further regulates domain purity, phase continuity, and molecular orientation. Asymmetric designs can also help mitigate non-radiative voltage loss through modulation of charge-transfer state energetics. Overall, asymmetric molecular design introduces additional structural and electronic tunability, offering new opportunities for overcoming the trade-offs that limit OPV performance. Finally, we discuss ongoing challenges and outline future perspectives to guide continued development and innovation in asymmetric SMA design.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4237-x

Advances in Silicon Anodes for Solid-State Batteries: From the Particle 'Size Effect' Perspective

Silicon-based (Si-based) anodes are core candidates for next-generation high-energy solid-state batteries (SSBs) due to their high theoretical capacity (~4200 mAh g−1). However, their practical application is constrained by the 'size effect', which influences mechanical integrity and electrochemical performance. This review systematically examines the failure mechanisms of nano-silicon (nSi) and micro-silicon (mSi) anodes when paired with sulfide and organic-inorganic composite solid-state electrolytes (SSEs). Key functional parameters of these SSEs are discussed, along with strategies to mitigate interfacial impedance and accommodate volume changes. Recent progress in structural and interface modifications is highlighted, including the use of hard-carbon-stabilized Li–Si anodes (achieving stable cycling) and pressure-free operation. The review identifies core challenges, such as achieving intimate solid–solid contact and managing mechanical stress, and outlines future directions for 'size effect' regulation to accelerate commercialization of high-energy Si-based SSBs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4192-y

Synergistic Multi-Metal and Defect Engineering for High-Efficiency Hydrogen Evolution Reaction

Electrochemical water splitting is pivotal for scalable green hydrogen production, yet its practical deployment hinges on cost-effective electrocatalysts with high activity and durability. This study introduces a low-cost, three-dimensional (3D) nanoporous ZrVFeCoNi material fabricated via chemical dealloying, at merely 0.16% of the cost of Pt. The structure-activity relationship between its microstructure and hydrogen evolution reaction (HER) performance was systematically explored. Lattice defect effects from multiphase intermetallic compounds, combined with multi-metal synergy, optimize H+ adsorption energy and electron transfer kinetics. The 3D nanoporous architecture provides a high electrochemical surface area with abundant active sites, enhancing electrolyte penetration and reducing interfacial mass transfer resistance. Consequently, the ZrVFeCoNi electrode exhibits outstanding HER performance, requiring only a 38 mV overpotential to reach 10 mA cm−2 and maintaining stable operation for 1000 h at 500 mA cm−2. Integrated into a full water electrolyzer (ZrVFeCoNi || IrO2/Ni), the system achieves a cell voltage of 1.60 V at a current density of 400 mA cm−2. Advanced characterization and density functional theory (DFT) calculations reveal that interfacial interactions and charge transfer at heterointerfaces drive catalytic activity, showcasing the potential of 3D nano-structured multiphase intermetallic compounds as high-performance electrocatalysts for green hydrogen systems.

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4209-3

Adjusting Light Absorption of Defective UiO-66 for Coupling Photothermal Evaporation with Photocatalysis

Solar interfacial evaporation and photocatalysis exhibit intrinsic complementarity in energy utilization pathways and reaction mechanisms. Integrating photocatalysis into interfacial evaporation systems enables a synergistic platform for efficient evaporation and pollutant removal. In this study, a defect-engineering strategy is developed for UiO-66 by covalently anchoring five carboxyl-containing organic dyes into its framework, where steric hindrance and ligand substitution synergistically induce abundant structural defects. This approach yields a series of defect-rich UiO-66 materials with tunable dye loading. Among them, the dye-sensitized UiO-66@dye-2 system demonstrates optimal light absorption capacity and vacancy defects. The dyes act as sensitizers, broadening the light absorption range and accelerating water evaporation, while the defect-inducing dyes introduce abundant trap sites, enabling rapid charge transfer and efficient spatial charge separation. Under 1-sun irradiation, the system achieves an outstanding water evaporation rate with a high solar-to-vapor conversion efficiency of 97.8%, along with excellent photocatalytic performance, achieving 95.4% degradation of phenol pollutants. Notably, it maintains stable degradation performance across highly acidic and alkaline environments, ensuring reliability for long-term operations in complex conditions. This work provides a molecular-level strategy for constructing defect-rich UiO-66 derivatives and offers insights for designing next-generation materials for integrated photothermal-photocatalytic environmental remediation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4317-4

Correction to: Facile preparation of cabazitaxel-loaded nanoparticles directly lyophilized from dioxane

This correction addresses an image assembly error identified in Fig. 7a of the original article published in Science China Materials, volume 66, issue 6, 2023, pages 2513–2522. The error was confined to the assembly of images in Fig. 7a, which presents H&E staining analysis of major organs from a toxicity study. The corrected version of Fig. 7 is provided in this corrigendum. The original study evaluated the toxicity of lyophilized cabazitaxel (CTX) and Tween 80-based CTX formulations in CD-1 mice following a single intravenous administration of 30 mg kg−1 CTX via the tail vein on day 0, with sacrifice on day 14 for analysis (n=5). The figure includes H&E staining of major organs, complete blood count (CBC) analysis with statistical significance indicated by *p < 0.05, and mouse weight measurements. The correction does not affect the overall results, data interpretation, or scientific conclusions of the original article. All authors have reviewed and approved the content of this corrigendum. The authors sincerely apologize for any inconvenience caused to the editorial office, reviewers, and readers. The article was received on 6 May 2026, accepted on 4 June 2026, and published online on 31 July 2026.

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

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

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

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4232-1

A comprehensive review on double-redox reaction towards high-performance polyanionic sodium-ion batteries

Polyanionic cathode materials are widely considered as potential cathode materials for sodium-ion batteries due to their strong three-dimensional framework and intrinsic thermal safety. Nevertheless, the limitation of the specific capacity and energy density hindered their application, which can be ascribed to the common reliance of single-electron redox reaction of the transition metal. By realizing the reversible double redox reaction of vanadium-based and manganese-based polyanion cathodes, researchers have successfully opened up a new way to break through the long-term performance limitations. Recent studies disclose that vanadium and manganese-based polyanionic cathodes exhibit the possibility of realizing a reversible double-redox reaction, which opened up new avenues to overcome the capacity dilemma. However, many fundamental issues remain unclear, including insufficient structural stability at high operating voltages, irreversible structural evolution induced by sodium extraction, sluggish electronic and ionic transport kinetics, and Jahn–Teller distortion. Therefore, it is imperative to summarize recent work in order to clarify the pathway for future investigation. In this review, the key challenges associated with the activation of the double-redox reaction are outlined, followed by the realization and regulation of the double-redox reaction in polyanionic cathode materials. A systematic summary of recent studies is performed for both vanadium and manganese-based compounds, which could contribute to the fundamental understanding of the double-redox reaction mechanism. Combined with the modification strategy and future perspective, this review provides insights into the rational design of polyanionic cathodes with a reversible double-redox reaction. It also offers insights into the development of high-energy-density cathode materials for next-generation sodium-ion batteries.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4194-2

Surface Dye-Coordination for Efficient Upconversion Nanosystems

Lanthanide-doped upconversion nanoparticles (UCNPs) exhibit distinctive optical characteristics, including excellent photostability, large anti-Stokes shifts, narrow emission bands, and tunable luminescence lifetimes. Despite their advantages, UCNPs suffer from inherently weak light absorption because of the 4f-4f transitions of lanthanide ions. Near-infrared dye-sensitization has emerged as an effective strategy to enhance their absorption, yet the photoconversion performance remains constrained by photobleaching and interfacial energy losses. In this review, we systematically analyze the surface coordination environments and energy transfer pathways that govern dye-sensitized UCNPs. We evaluate critical molecular parameters, such as dye frameworks, surface binding affinity, and triplet-state energy alignment, in conjunction with nanoparticle structural features, including dopant concentration, core-shell architectures, and surface electronic configurations. By providing a fundamental assessment of these photophysical and photochemical processes, we propose targeted optimization strategies to enhance the performance and stability of these hybrid materials for advanced applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4207-0

Synergistic Conformation Locking and Terminal Conjugation Engineering of Carbazole-Based Self-Assembled Monolayers for High-Performance Organic Solar Cells

Self-assembled monolayers (SAMs) are critical for optimizing electrode interfaces in organic solar cells (OSCs), as their molecular conformation and ordering govern interfacial quality. Conventional carbazole-based SAMs (e.g., 2PACz) rely on flexible alkyl linkers whose conformational freedom often results in disordered packing, incomplete coverage, and limited environmental robustness, especially under air processing. Here, we design and systematically study a series of well-defined carbazole SAM homologues (Cz-PPA, Cz-HPA, PCz-HPA, and PCz-PPA) to elucidate the role of synergistic conformational locking achieved through linker rigidification and terminal conjugation extension. PCz-HPA, which integrates a rigid cyclohexane linker with a strongly conjugated 3,6-diphenylcarbazole end group, enables effective conformational locking. It forms a highly ordered, densely packed monolayer on ITO, delivering high surface coverage, a strengthened interfacial dipole, and improved energy-level alignment. The rigid framework and ordered interface enhance air-process stability and interfacial contact, thereby suppressing recombination and facilitating exciton dissociation and charge collection. Using PCz-HPA as SAM for the devices based on PM6:L8-BO reaches 19.75% efficiency and it demonstrates consistent gains across multiple systems. These results identify conformational locking via linker rigidification as a general design rule for durable, high-performance SAM interlayers in organic optoelectronics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4366-1

In Situ Dynamic Regulation of Strain at the Buried Interface of Stable Perovskite Solar Cells

Perovskite solar cells (PSCs) have achieved remarkable power conversion efficiencies, yet their operational stability remains a critical bottleneck for commercialization. Strain at the buried interface, induced by thermal expansion mismatches and lattice distortions during annealing, is a major contributor to performance degradation. This work introduces a meltable additive-enabled liquid medium annealing (LMA) strategy to dynamically regulate strain in situ. By employing a liquid medium that melts at elevated temperatures, the annealing process provides a compliant environment that alleviates residual strain at the buried interface. Cross-sectional scanning electron microscopy and high-angle annular dark-field imaging reveal improved interfacial contact and reduced lattice distortion. Modulus mapping indicates enhanced mechanical uniformity, while molecular dynamics simulations corroborate the strain-relief mechanism. The d-spacing variation of the (001) facet upon heating at 85 °C is significantly suppressed, indicating superior thermal stability. Under diurnal cycling (12 h maximum power point tracking at 85 °C and 12 h dark at room temperature), the target devices exhibit enhanced stability, retaining a higher fraction of their initial performance compared to controls. This work underscores the importance of phase engineering during annealing and opens a new avenue for strain management in perovskite photovoltaics and beyond.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4463-3

TMPU-Based Phase-Locking Strategy for Spatiotemporally Homogeneous Crystallization Enables Ambient Scalable Perovskite Photovoltaics

Organic-inorganic hybrid lead halide perovskites exhibit exceptional photovoltaic properties, yet their low crystallization energy promotes defect generation and necessitates precise control over synthesis parameters, hindering scalable fabrication. Ambient large-area coating methods suffer from environmental disturbances, leading to nonuniform crystallization and mixed α/δ phases, resulting in module efficiencies below 20% compared to >27% for lab-scale spin-coated cells. This work introduces a phase-locking strategy using 3-ureidopropyltrimethoxysilane (TMPU) incorporated into the PbI2 precursor solution during two-step blade coating. TMPU undergoes simultaneous cross-linking and interaction with the perovskite intermediate, forming a dynamically evolving intergranular network that blocks moisture and reduces the energy barrier for α-FAPbI3 formation. This approach achieves spatiotemporally homogeneous crystallization, eliminating directional inhomogeneity. Under segmented and monolithic aging protocols, control devices exhibited severe position-dependent degradation with only 34% efficiency retention at early-coated positions after thermal cycling, whereas phase-locked films maintained over 84% of initial photoluminescence intensity across all regions. Encapsulated modules retained over 90% of initial efficiency after 1500 h of 85°C maximum power point tracking (ISOS-L-2) and after 2300 h under 85°C/85% RH damp-heat testing (ISOS-D-3). The TMPU-based strategy combines exceptional performance (21.5% module efficiency) with robust stability, offering a distinct advantage over alternative approaches. This work addresses the kinetic and spatial dimensions of upscaling, demonstrating that morphological uniformity is a fundamental contributor to stability, marking a critical advance toward practical deployment of perovskite photovoltaics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4114-5

Experimental Realization of Mixed-Dimensional 1D-Graphyne-Nanowires/2D-AgTe-Monolayer Heterostructures

The precise and controllable synthesis of one-dimensional (1D) and two-dimensional (2D) heterostructures, coupled with the manipulation of their atomic and electronic configurations, is of paramount significance. However, due to the synthetic challenges associated with graphyne (GY) materials, their integration into 1D/2D heterostructures remains considerably difficult. Herein, we demonstrate a post-synthetic intercalation strategy for tellurium onto Ag(111), enabling the controllable fabrication of 1D-GY-nanowire/2D-AgTe-monolayers heterostructures. Scanning-probe microscopies are employed to characterize morphological evolution during the intercalation process. Scanning tunneling spectroscopy results confirm that AgTe monolayer intercalation induces interfacial decoupling of the graphyne nanowires. Density functional theory calculations demonstrate that work function-driven Fermi level modulation via interfacial charge engineering assigns the 1D-GY-nanowire/2D-AgTe-monolayers heterostructures as type-I heterostructures. Our work not only significantly advances the fundamental understanding of interfacial interactions in 1D/2D heterostructures but also presents a scalable strategy for designing heterostructures with tailored electronic functionalities, thereby opening new avenues for applications in advanced nanoelectronics and optoelectronic devices.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4337-2

Stiff–Soft Synergistic Assembly of Mechanically Adaptive Silica Aerogel Composites

Silica aerogels are recognized as leading super-insulating materials due to their ultralow thermal conductivity, yet their intrinsic brittleness and poor processability restrict practical deployment in complex industrial and extreme environments. This study introduces a macro-scale 'stiff–soft' synergistic strategy, combining a macroscopically processable, soft-and-tough framework as the load-bearing component with hard-and-brittle polymethylsilsesquioxane (PMSQ) aerogels as the insulating component. A pressure-driven assembly process enables viscosity-tunable PMSQ gel inks to be controllably infused into various hollow frameworks, including honeycomb panels, wheat straws, and hollow fibers. Guided by a modified Hagen–Poiseuille model, ink viscosity is precisely matched to the geometric parameters of the hollow structures. The resulting composites achieve compressive strength of 2.5 MPa, flexural strength of 6.25 MPa, and tensile strength of 40 MPa, while maintaining excellent thermal insulation. This versatile and scalable approach offers a new design paradigm for mechanically adaptive silica aerogel composites in thermal management applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4424-5

Topology-Derived Construction of Single-Crystal Two-Dimensional Binodal Covalent Organic Frameworks toward Inclined AB Stacking

Covalent organic frameworks (COFs) are crystalline organic porous materials whose atomically precise structures underpin their functional applications. However, atomic-level structural information remains unavailable for most reported COFs, hampering rational design and structure-function studies. For two-dimensional (2D) COFs, synthesizing high-quality single crystals is challenging, and the crystallization mechanism makes it difficult to anticipate stacking arrangements. Lacking direct evidence, researchers often assume AA stacking for [4+4] COFs in powder X-ray diffraction (PXRD) fitting, an assumption now questioned. Here, Zhang et al. report the controlled synthesis of single-crystal 2D binodal COFs via a topological derivation strategy. Using 3D electron diffraction at resolutions of 0.90–1.02 Å, they solved the structures of five COFs (NKCOF-88 to -92) derived from a parent sql framework. The four-connected benzene-core monomers were substituted with extended monomers (pyrene or tetraphenylethylene), decomposable into two three-connected nodes, yielding pseudo-bex and pseudo-hcb networks. Single-crystal analysis revealed that the in-plane chain configuration is determined by imine bond orientation, with cis+cis or trans+trans alignments giving planar layers, while mixed alignments produce undulated layers. Crucially, all five COFs exhibit inclined staggered AB stacking, stabilized by edge-to-face π–π interactions, contradicting the assumed AA stacking. This work provides the first single-crystal evidence of non-AA stacking in [4+4] COFs and establishes a correlation between linkage conformation and layer geometry. The topology-derived method offers a generalizable route to binodal COFs with predefined connectivity, facilitating the fabrication of high-quality single crystals and enabling reticular chemistry to shift from simulated models to real structures.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4199-8

Synthesis, Structure, Properties and Applications of High-Entropy Borides

High-entropy borides (HEBs) represent an emerging class of high-entropy materials that have garnered significant attention as ultra-high-temperature ceramics (UHTCs). By leveraging the high configuration entropy effect, HEBs stabilize single-phase solid solutions, exhibiting a suite of properties unattainable in traditional binary borides. This review systematically consolidates research progress on HEBs, beginning with theoretical predictions and component design via first-principles methods. It then details typical HEB systems and principal synthesis techniques, including arc melting and spark plasma sintering. The core analysis evaluates the outstanding performance of HEBs, emphasizing exceptional mechanical properties such as ultra-high hardness and excellent fracture toughness, alongside high-temperature friction and wear behavior, and oxidation resistance. Finally, the review outlines application prospects in extreme environments like aerospace and cutting tools, while also addressing current challenges. The paper underscores the potential of HEBs to overcome the hardness-toughness trade-off inherent in conventional ceramics, driven by strong metal-boron hybridization. This comprehensive overview positions HEBs as promising candidates for next-generation thermal and mechanical protection systems, with future research directions focusing on optimizing compositions and processing to tailor properties for specific applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4258-0

High-Entropy Noble-Metal-Based Nanostructures with Advanced Regulations for Electrocatalysis

High-entropy noble-metal-based catalysts (HENCs) have emerged as a frontier in electrocatalysis, leveraging the synergistic effects of high-entropy alloys and noble metals to achieve exceptional atomic utilization, tunable electronic structures, and vast compositional space. Their anisotropic architectures confer superior dissolution resistance, rapid electron/mass transfer, and abundant active sites. This review systematically categorizes advanced structural regulations—grain boundary engineering, single-atom alloys, intermetallic compounds, amorphous structures, and core@shell configurations—and evaluates their impact on electrocatalytic performance. By modulating surface electronic states and lattice strain, these strategies optimize reaction kinetics and durability. Notable applications include oxygen reduction (ORR), oxygen evolution (OER), hydrogen evolution (HER), and CO2 reduction (CO2RR). Despite progress, challenges persist in scalable synthesis, mechanistic understanding, and long-term stability. This review underscores the potential of HENCs to bridge laboratory innovation and industrial deployment, providing a roadmap for future catalyst design.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4110-9

An Ionic Hydrogel-Based 3D Force Sensor for Multidimensional Password Input and Enhanced Security

Flexible tactile sensors are pivotal for human-machine interaction, yet accurate decoupled sensing of three-dimensional (3D) forces and integration into functional systems remain challenging. Here, we present a piezoresistive 3D force sensor based on ionic hydrogels that detects and analyzes multi-directional forces. The sensor exhibits a linear response to normal forces from 1 to 25 N (R²=0.99) and maintains stable sensitivity for shear forces within 0–4 N. By incorporating both force magnitude and direction, the sensor enables multidimensional password input, expanding traditional one-dimensional passwords into numeric, alphabetic, and Morse code formats. Experimental results demonstrate significant potential for enhancing information security. The sensor's simple structure, mature fabrication, and ease of integration with flexible electronics underscore its practicality. This work addresses the bottleneck of unidirectional sensing in conventional flexible pressure sensors, offering a robust solution for multidimensional force acquisition in human-machine interfaces, soft robotics, and biomechanical monitoring.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3865-1

Towards Chlorine-Tolerant Seawater Electrolysis: Anode Electrocatalysts, Electrolyte, and System Design Strategies

Seawater electrolysis (SWE) is a reusable and convenient avenue for producing hydrogen, offering a promising solution to the energy crisis and global warming. However, poor electrolytic efficiency and irreversible corrosion caused by high concentrations of chlorine severely hinder the commercialization of SWE. To address these challenges, numerous strategies have been proposed in recent years, involving theoretical innovations, directional catalyst design, and electrolyser modification. This review provides a systematic summary of the chlorine-related challenges and solutions encountered in SWE. The chlorine-related theoretical knowledge and challenges in SWE systems are first emphasized. Subsequently, multiple anodic chloride suppression strategies are introduced from three aspects: directional regulation of oxygen evolution catalysts, optimization of electrolyte compositions, and ingenious upgrades of electrolytic cells. Finally, future challenges and development directions for large-scale application of SWE technology are explored. This review offers an in-depth analysis of the chlorine-related challenges encountered in the industrialization of SWE, aiming to accelerate the advancement of this technology toward practical applications.

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3691-9

Achieving High-Performance Near-Infrared Cr3+-Activated Phosphor via A&C Lattice Sites Cosubstitution Strategy in Garnet for Plant Lighting

Near-infrared (NIR) spectroscopy has significantly advanced NIR light sources, yet creating NIR emitters with optimal luminescence properties, high thermal stability, and adjustable emission peaks remains a critical challenge for future smart NIR devices. Here, we introduce a chemical unit cosubstitution strategy by incorporating Ca2+ and Sn4+ ions into the garnet structure. Through this approach, Y3−yCayGa4.95−ySnyO12:0.05Cr3+ (y = 0–1) phosphors were developed by modulating the A&C ligands, resulting in emission centers ranging from 708 to 768 nm. The modified local environment of Cr3+ accounts for the increased light intensity (2.71 times) and broadening observed. Furthermore, this study investigated the impact of varying Cr3+ concentrations (Y2.6Ca0.4Ga4.6−xSn0.4O12:xCr3+) on the production of high-performance phosphors. Compared with Y3Ga4.93O12:0.07Cr3+, the optimized phosphor exhibited exceptional external quantum efficiency (EQE = 34.96%). The luminescence enhancement is attributed to an increase in radiative transitions caused by octahedral Jahn-Teller distortion, whereas the notable thermal stability (91.3% at 423 K) is attributed to the presence of weak electron-phonon coupling (EPC) and oxygen vacancy (OV) defects. Finally, by combining it with a 450 nm blue LED chip, we constructed a near-infrared phosphor-converted LED (NIR pc-LED) device with superior electroluminescence efficiency (18.8% @ 100 mA), increasing the ultralow quenching rate (< 5% intensity loss after 30 days of operation) and demonstrating remarkable performance in plant lighting applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3582-9

Dual-functional light adaptation in perovskite quantum dot synaptic devices for smart blue-light protection

Perovskite quantum dots (PQDs) hold great potential for brain-like neuromorphic computing. However, the development of PQDs-based synaptic devices is hindered by interfacial defects and limited stability. Here, we demonstrate a high-performance Cs2AgBiBr6 QDs/organic single crystal heterojunction synaptic device, fabricated via a novel space-confined vertical growth technique combined with a polymer-free transfer process. Vertically grown organic single crystals enable superior carrier mobility and facilitate the formation of low-defect interfaces with PQDs. The heterojunction exhibits remarkable photosensitivity (7.22 × 10^5 at 425 nm) and detectivity (2.15 × 10^15 Jones), owing to the strong optical absorption of PQDs coupled with the superior charge transport characteristics of organic single crystals. Notably, the device achieves dual-functional light adaptation, emulating synaptic behaviour under blue light while exhibiting photo-switching under green/red light. This unique capability enables smart blue-light hazard protection. This work not only provides a versatile platform for high-performance PQDs-based synaptic devices but also advances the development of brain-inspired neuromorphic systems for next-generation computing and intelligent sensing.

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3803-8

Modulating Donor-Acceptor Interactions in Polymeric Carbon Nitride for Efficient Hydrogen Peroxide Photosynthesis and Emerging Contaminants Removal

The molecular copolymerization of donor-acceptor (D-A) interactions has been effectively utilized to modulate the charge transfer dynamics in polymeric carbon nitride (PCN) photocatalysts. Herein, a D-A configured photocatalyst (TPCN) was constructed by copolymerizing 4,4’,4’’-(1,3,5-triazine-2,4,6-triyl) trianiline (TAPT) as the electron donor with triazine units (electron acceptor). The unique propeller structure of TAPT, combined with the triazine framework, expanded the π-conjugated system and induced a strong built-in electric field (BIEF) across the D-A configuration. Theoretical calculations and transient absorption spectroscopy revealed that this synergistic effect facilitated intramolecular charge separation and widened the range of light absorption, indicating accelerated charge transfer and suppressed recombination in TPCN. The optimized TPCN3 sample exhibited dramatically enhanced photocatalytic H2O2 production (1.74 mmol g−1 h−1), representing a 13.4-fold increase over pristine PCN. Additionally, the TPCN3 sample also exhibited significantly faster degradation kinetics than PCN counterpart toward various emerging contaminants. This work demonstrates a promising strategy for designing efficient metal-free photocatalysts for sustainable H2O2 production and environmental remediation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3583-6

Janus-interface engineering enhances hydrogel integrated with ZIF-8@Co9S8 composite featuring concave pyramid patterns for efficient solar-driven water purification

Water scarcity and the increasing demand for clean water have driven the development of efficient solar desalination technologies. Interfacial solar steam generation (ISSG) is promising, yet its practical deployment is hindered by insufficient light harvesting and salt crystallization on photothermal surfaces. Here, we report a Janus hydrogel evaporator in which tubular Co9S8 nanocrystals are uniformly embedded in a polyvinyl alcohol (PVA) matrix with a concave pyramid pattern, creating a broadband light-trapping architecture (200–2500 nm) with 96% solar absorption. The top surface is further coated with hydrophobic zeolitic imidazolate framework-8 (ZIF-8), while the bottom retains intrinsic hydrogel hydrophilicity, establishing asymmetric wettability that sustains rapid water supply yet suppresses salt deposition. Under one-sun illumination (1 kW m−2), the Janus evaporator achieves an evaporation rate of 2.69 kg m−2 h−1 and a solar-to-vapor efficiency of 98.15%. Continuous operation in 3.5 wt% brine shows stable performance for 11 h without observable salt crystallization. This work offers an effective, durable pathway toward high-performance solar desalination and wastewater purification.

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

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

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

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3841-6

Synergistic Bulk and Interface Engineering Empowering Exceptional Lithium Storage Performance of Ni-Rich Cathodes

Ni-rich layered oxide cathodes are pivotal candidates for next-generation lithium-ion batteries (LIBs) due to their high capacity and energy density. However, their susceptibility to structural deterioration and interfacial degradation during cycling causes substantial capacity fade, hindering commercialization. This work proposes a synergistic strategy of lattice doping and in situ surface coating to enhance structural integrity and interfacial stability of LiNi0.9Co0.05Mn0.05O2. La and Y dopants act as pillars to reinforce the layered structure, mitigating volume changes and expanding c-axis spacing to facilitate Li+ diffusion. Concurrently, La4NiLiO8 and LiYO2 coatings protect the cathode from H2O/CO2 corrosion and electrolyte attack, while their high lithium-ion conductivity promotes Li+ transport. The modified cathode delivers exceptional electrochemical metrics: high specific capacity of 207.3 mA h g−1, remarkable cycling stability with 97.6% retention after 100 cycles, superior rate capability of 152.1 mA h g−1 at 10.0 C, and enhanced thermal stability. This work establishes a paradigm for multi-dimensional stabilization of Ni-rich cathodes via synergistic bulk and interface engineering, providing insights for designing high-performance energy storage systems.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3558-4

Computational-driven design of Ti-based medium entropy alloy for enhanced high-temperature performance above 600 °C

The development of advanced titanium alloys capable of operating above 600 °C remains a critical challenge for aerospace propulsion systems, where conventional Ti alloys suffer from insufficient high-temperature strength and microstructural instability. Here, we propose a computationally driven design strategy for titanium-based medium-entropy alloys (MEAs) that integrates thermodynamic phase prediction with mechanistically informed strength modeling, enabling systematic exploration of the Ti-Nb-Al-Cr quaternary system. The optimized Ti70Nb10Al15Cr5 MEA exhibits exceptional performance metrics: 18% room-temperature ductility (as-cast), a yield strength of 520.7 MPa at 650 °C (post-aging), and an ultralow density of 4.76 g/cm3 (45% lighter than Inconel 718). Microstructural characterization reveals a metastable single-phase BCC structure in the as-cast state, which transforms into a BCC/Ti3Al dual-phase system upon aging, with temperature-dependent precipitate morphology and phase stability. The alloy demonstrates superior high-temperature strength retention up to 900 °C (>80 MPa yield strength), outperforming commercial titanium alloys (e.g., Ti-1100, TG6) and bridging the performance gap between conventional Ti alloys and nickel-based superalloys. This work establishes a multi-criteria design paradigm for entropy-engineered alloys, offering a viable pathway to lightweight, high-temperature structural materials for next-generation aerospace applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3588-2

In-situ polymer-derived SiOCnws-Cf/SiC(rGO) composites: a potential candidate for EMI shielding and thermal management

The rapid evolution of aerospace technology necessitates the development of multi-functional composites that combine light weight, mechanical robustness, thermal protection/insulation, and electromagnetic interference (EMI) shielding. C/SiC porous ceramic composites are promising for thermal protection in hypersonic vehicles. Here, we report a facile strategy to fabricate Cf/SiC composite polymer-derived ceramics (PDCs) via re-pyrolysis of high-energy ball-milled polycarbosilane-vinyltriethoxysilane-graphene oxide (PVG) with Cf/SiC(rGO)p blend interleaves. In-situ generated honeycomb-like cellular structures and non-directional channels reduce density and increase porosity. High-quality SiO2 joints, formed from Si-dangling bonds, strengthen interfacial bonding via a brazing effect, while in-situ SiOC nanowires (SiOCnws) create a hierarchically enhanced network, improving fracture toughness and crack resistance. Multi-scale interfacial/dipole polarization enhances EMI shielding. The optimized Cf(0.2)/SiC(rGO) composite exhibits low density (1.49 g cm−3), high fracture toughness (6.32 MPa m1/2), hardness (7.18 GPa), compressive strength (72.67 MPa), and EMI shielding effectiveness of 58.31 dB. It maintains structural stability under butane blowtorch ablation at ~1300 °C for 3600 s. Porous variants show thermal conductivity of 0.211 W m−1 K−1 with 69.74% porosity. These multi-functional composites are promising for thermal protection systems in aerospace applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3771-9

Mechanisms for low temperature densification and enhanced mechanical properties of (Ti, Zr, Hf, Nb, Ta)(C, N) using CrSi2 as an additive: formation of (Ti, Zr, Nb)2Cr4Si5 and grain boundary strengthening

High-entropy carbonitride ultra-high temperature ceramics (HECN-UHTCs) typically require high densification temperatures, leading to grain coarsening and degraded mechanical properties. This study introduces CrSi2 as a sintering additive for (Ti, Zr, Hf, Nb, Ta)(C, N), effectively reducing the densification temperature by 200 °C. During sintering, interdiffusion and cation exchange result in the formation of an orthorhombic (Ti, Zr, Nb)2Cr4Si5 phase within the ceramic matrix. The resulting dual-phase ceramic exhibits a hardness of 24.65 ± 0.23 GPa and a fracture toughness of 6.03 ± 0.48 MPa m1/2, significantly surpassing most reported HECN-UHTCs. Enhanced mechanical properties are attributed to crack deflection, increased localized lattice strain, and Cr grain boundary segregation. This liquid phase-assisted low-temperature sintering strategy offers a promising pathway for densifying other ultra-high temperature ceramics.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3660-5

Metastructure Strategies for d33 Enhancement Beyond Intrinsic Limits in 3D-Printed BaTiO3 Metamaterials

High-sensitivity piezoelectric ceramics with high piezoelectric constants (d33) are crucial for miniaturized, low-power, and high-efficiency transducers. However, conventional performance enhancement relies on intrinsic parameter modulation, which is limited and blind. This study introduces a performance-driven metamaterials creation model to develop structure-function-integrated piezoelectric materials. We systematically investigated the effects of metastructure design on d33 across two-dimensional straight rod (SR) structures, three-dimensional dot-matrix (Octa) structures, complex triply periodic minimal surface (TPMS) structures, and hybrid Octa&SR structures. The results demonstrate that metastructures combining high polarization charge conversion efficiency with low compression modulus (stiffness) effectively enhance d33. The SR structure exhibited optimal polarization charge conversion, the Fks-Shellular (FksS) structure within TPMS showed low stiffness, and the Octa&SR structure combined both properties. Notably, all three structures displayed exceptional piezoelectric performance. Specifically, the FksS structure achieved a substantial d33 of 194 pC/N, a 24% enhancement over conventional solid BaTiO3, while maintaining isotropic and stress-insensitive properties. This work elucidates the mechanism for designing piezoelectric metastructures, offering a novel pathway for developing high-performance, high-failure-strength piezoelectric materials.

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

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

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

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

High-efficiency hybrid planar/bulk heterojunction organic solar cells

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