SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4419-1
Proton exchange membrane fuel cells (PEMFCs) fed with reformate hydrogen suffer severe anode poisoning by trace CO, necessitating high CO electrooxidation potentials that degrade performance and durability. This work introduces a Pt@CrSA-N-C anode catalyst featuring a hydrophilic Cr single-atom interface that simultaneously weakens CO adsorption on Pt via electronic regulation and promotes water activation, thereby lowering the CO oxidation onset potential to approximately 0.13 V vs. RHE. The onset potential was determined by two independent methods: the first potential at which the background-corrected current exceeds 0 mA cm-2 during CO oxidation reaction tests in a three-electrode system, and the potential at which the forward scan current exceeds the N2 background current in CO-stripping voltammetry. The catalyst achieves a maximum power density under 100 ppm CO that surpasses reported advanced catalysts, as compiled in Table S5. Structural, spectroscopic, and electrochemical characterizations collectively establish a coherent rationale for the hydrophilic single-atom interface strategy. This approach addresses the longstanding trade-off between CO tolerance and Pt utilization, offering a viable route for low-potential CO removal in practical PEMFC anodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4279-0
Inkjet printing has emerged as a viable additive manufacturing route for organic light-emitting diodes (OLEDs), offering drop-on-demand patterning, high material utilization, and compatibility with large-area flexible substrates. This review critically examines the formulation science, printhead physics, and drying kinetics that govern the quality of inkjet-printed organic layers. We analyze the rheological window required for stable jetting, typically 1–20 mPa·s viscosity and 25–45 mN/m surface tension, and the dimensionless Ohnesorge number (0.1 < Z < 1) that defines satellite-free droplet formation. The coffee-ring effect, driven by capillary flow and solvent evaporation gradients, remains the dominant failure mode for pixel non-uniformity; binary solvent systems and substrate temperature control (40–60 °C) mitigate this. We survey recent progress in printed hole-transport, emissive, and electron-transport layers, with particular attention to cross-linkable hole-transport materials that resist interlayer dissolution. Device performance metrics from printed OLEDs now reach external quantum efficiencies of 15–20% for fluorescent emitters and >25% for phosphorescent systems, with operating lifetimes (T95) exceeding 1,000 hours at 1,000 cd/m². We identify remaining bottlenecks: nozzle clogging from aggregated nanoparticles, film thickness variation across large panels, and the absence of standardized ink formulations. The review concludes with a roadmap for industrial adoption, emphasizing in-line metrology and closed-loop process control as prerequisites for yield parity with vacuum-deposited OLEDs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4439-4
Silk fibroin (SF) hydrogels are promising for neural regeneration but suffer from progressive stiffening due to excessive β-sheet assembly, limiting their use in traumatic brain injury (TBI) repair. This study introduces a dopamine (DA)-mediated synergistic topological entanglement strategy to construct an SF-DA/gelatin-DA composite hydrogel (SG). The system integrates covalent cross-linking, net cationic electrostatic repulsion, hydrogen bonding, and π-π stacking to regulate SF assembly dynamics at the molecular level. The resulting SG hydrogel maintains stable mechanical softness over extended periods, with a storage modulus of approximately 1.2 kPa after 28 days, compared to a 5-fold increase in pure SF hydrogels. The sustained softness promotes neural stem cell (NSC) proliferation and differentiation, with a 2.5-fold increase in βIII-tubulin expression and a 1.8-fold increase in GFAP expression after 14 days. In a rat TBI model, SG hydrogel implantation reduced glial scar formation by 40% and improved neurological function scores by 30% at 8 weeks. The hydrogel degrades at a rate of 12% per week, matching tissue regeneration. This multi-crosslinking approach offers a clinically translatable strategy for neural tissue engineering, addressing the critical bottleneck of mechanical instability in SF-based biomaterials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4433-5
Negative thermal expansion (NTE) and zero thermal expansion (ZTE) materials are technologically relevant for precision engineering, yet their practical deployment is constrained by narrow operating temperature windows. This study introduces an entropy-designing strategy to regulate the thermal expansion behavior in the AⅠBⅡCⅢMo3O12 system, specifically K0.4(Mg0.25Mn0.25Co0.25Ni0.25)0.4Sc1.6Mo3O12 (CE0.4MO) and related CExMO compositions (x = 0.4, 0.6, 0.8, 1.0). By tuning configurational entropy, the operating temperature windows for both NTE and ZTE are significantly broadened, with the ZTE region shifting to higher temperatures. Among single-phase compositions, CE0.4MO exhibits the lowest configurational entropy and demonstrates NTE from 100 to 830 K and ZTE up to 1100 K, surpassing most reported ZTE materials. Systematic analyses of structural evolution, lattice dynamics, and electronic structure reveal that reduced configurational entropy suppresses structural evolution, directly correlating with decreased structural flexibility. Higher atomic displacement parameters (ADPs) of oxygen in CE1.0MO provide experimental evidence for enhanced flexibility. Raman spectroscopy shows that the full width at half maximum (FWHM) of peaks in the 750–900 cm-1 range positively correlates with configurational entropy, indicating reduced lattice disorder, while modes within 750–1050 cm-1 blue-shift as entropy decreases, confirming lattice stiffening. Electron localization function (ELF) and charge density analyses indicate that Mg/Mn/Co/Ni/Sc–O bonds are ionic, with ionicity weakening as configurational entropy decreases, thereby enhancing constraints on atomic vibrations and reducing structural flexibility. This work establishes a theoretical foundation for designing thermal expansion materials with wide operating temperature ranges.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4506-2
This review critically examines recent advances in plasmonic organic photovoltaics (OPVs) enabled by metal nanoparticles (MNPs), nanopatterns, and subwavelength nanogratings, with a specific focus on the transition from fullerene acceptor (FA) to nonfullerene acceptor (NFA) systems. When incorporated into hole transport layers (HTLs), electron transport layers (ETLs), active layers, or transparent electrodes, these nanostructures leverage localized surface plasmon resonance (LSPR) to enhance light absorption, exciton generation and dissociation, and charge transport. Broadband plasmonic designs extend spectral utilization and enable versatile device architectures. The net performance enhancement arises from a delicate balance: beneficial contributions such as electromagnetic field enhancement (ELEF), additional absorption via light scattering (AALS), and plasmon resonance energy transfer (PRET) increase photon harvesting and carrier generation, while parasitic processes including self-absorption (SET) and exciton quenching limit efficiency if not properly controlled. Despite substantial progress, challenges persist in precise control over nanoparticle size, shape, and dispersion to improve chemical and morphological stability. The mechanisms of exciton quenching and charge recombination at metal–organic interfaces require further investigation. Critically, most studies to date have focused exclusively on FA systems, where spectral mismatch and severe quenching have historically capped performance. NFAs offer unique advantages, including strong near-infrared absorption that aligns with plasmonic resonances, potentially unlocking enhancement mechanisms previously inaccessible. These insights provide a framework for understanding plasmonic effects in OPVs and highlight the prospective potential of plasmonic nanostructured designs to drive further performance improvements, particularly as the field shifts toward next-generation NFA-based OPV devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4267-y
The synthesis of two-dimensional MBenes from MAB-phase ceramics is impeded by uncontrolled etching kinetics that compromise structural integrity and yield. This study introduces a vacuum molten salt strategy to regulate space-charge accumulation during the selective removal of Al from Mo2AlB2, producing honeycomb-like architectures. The vacuum environment suppresses oxidative side reactions and modulates ionic transport, enabling precise control over etching depth and morphology. The resulting Mo2AlB2 exhibits exceptional electromagnetic wave absorption, with a minimum reflection loss of -56.3 dB at 2.4 mm and an effective absorption bandwidth of 6.8 GHz. These metrics surpass conventional etching-derived MBenes by a factor of 2.5 in attenuation capacity. The space-charge-regulated mechanism is elucidated through in situ spectroscopic and computational analyses, revealing that vacancy-induced charge redistribution governs the etching front propagation. This work establishes a scalable route for high-purity MBenes with tailored porosity, addressing critical bottlenecks in energy absorption and catalytic applications. The vacuum molten salt approach eliminates the need for hazardous HF, offering a safer and more environmentally benign pathway for industrial translation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4328-2
Laser-driven broadband near-infrared (NIR) light sources are highly desirable for diverse non-visible optical applications. However, conventional phosphor-in-silicone converters will be rapidly invalidated under high-power laser excitation, and the poor structural stability of Cr3+ activated gallate/germanate phosphors makes them prone to interfacial reaction with silicate glass, leading to substantial deterioration in luminescence properties of phosphor-in-glass film (PiGF) converters. Herein, we report an efficient and stable ultrabroadband NIR PiGF with a high internal quantum efficiency of ≈ 94%, a long peak wavelength of 850 nm and an ultra-large full width at half maximum of 300 nm. The detrimental interfacial reactions with glass matrix are effectively suppressed by embedding the Cr3+ activated superstoichiometric MgO·1.75Al2O3 phosphor, which is attributed to the superior high-temperature structural stability of the aluminate spinels. Through effective thermal management by the sapphire plate and further a motor-driven rotating wheel, a high-performance laser-driven light source is further demonstrated, which can deliver high-brightness ultrabroadband NIR light with an output power exceeding 1.1 W, a light conversion efficiency of 26%, and a stable operation for over 15 hours. Our work provides an efficient, stable and cost-effective all-inorganic converter for the development of laser-driven NIR light sources.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4452-8
Europium(III) complexes offer intrinsically narrow red emission (full-width at half-maximum < 5 nm) that is highly desirable for ultrahigh-definition displays, yet their electroluminescence performance is severely limited by unbalanced charge transport and inefficient energy transfer. This work reports a molecular design strategy that modulates both energy transfer and charge transport in Eu³⁺ OLEDs. The synthesized complex, Cz-Eu, incorporates a carbazole-functionalized ancillary ligand to facilitate host–guest energy transfer and hole transport. The single-crystal structure was deposited (CIF: Cz-Eu-cif.cif) and subjected to PLATON validation, which flagged 3 type-1 alerts (CIF construction/syntax errors), 8 type-2 alerts (possible structural model deficiencies), 12 type-3 alerts (low structure quality), and 4 type-4 alerts (improvement suggestions), with no duplication detected. These crystallographic alerts indicate that the reported structure requires further refinement before it can be considered reliable. Nevertheless, the device metrics demonstrate a promising route: the optimized OLED achieves efficient ultranarrow-band red emission, with the potential for high color purity and reduced power consumption. The findings underscore the critical role of ligand engineering in balancing charge fluxes and fostering efficient energy transfer, providing a viable pathway for next-generation red emitters. However, the structural ambiguities highlighted by the PLATON analysis warrant cautious interpretation of the structure–property relationships and suggest that additional crystallographic and device stability studies are necessary to substantiate the claimed performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4245-4
The discrimination of volatile organic compounds (VOCs) at trace concentrations remains a critical challenge for environmental monitoring, industrial process control, and non-invasive disease diagnostics. Conventional electronic noses rely on sensor arrays comprising multiple chemically distinct receptors, which introduces fabrication complexity, calibration drift, and cross-sensitivity. Here, we demonstrate that a single-component Ti3C2Tx MXene (TM) sensor array, engineered through controlled surface chemistry and device architecture, generates independent and high-dimensional characteristics (IHC) sufficient for precise VOC pattern recognition. By exploiting the intrinsic heterogeneity of TM basal planes and edge sites, we achieve differential interaction motifs without expanding elemental composition. The array discriminates VOCs including acetone, ethanol, toluene, and hexane at concentrations down to 100 ppb with classification accuracy exceeding 95%. Principal component analysis reveals distinct clustering with cumulative variance of 92.3% captured by the first three principal components. The sensor exhibits a limit of detection of 50 ppb for acetone and response/recovery times of 12 s and 18 s, respectively. Long-term stability tests over 30 days show less than 5% signal degradation. This single-component strategy simplifies fabrication, reduces calibration overhead, and offers a scalable pathway for miniaturized, low-power VOC sensing platforms compatible with Internet of Things (IoT) deployment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4412-y
GeTe-based thermoelectric materials are promising lead-free alternatives to PbTe, but their intrinsically high Ge vacancy concentration (~10^21 cm^-3) leads to excessive carrier density and degraded Seebeck coefficient. This study integrates resonant levels (RLs) via In doping and local van der Waals gaps via Sb/Bi alloying to decouple electron and phonon transport. The optimal composition Ge0.91Sb0.04Bi0.04In0.01Te exhibits a Seebeck coefficient of ~287.31 μV K^-1 at 323 K, more than double that of the In-free sample (~102.28 μV K^-1). The peak figure of merit zT reaches ~1.8 at 723 K, with an average zT of ~1.0 over 323–723 K. Vickers hardness is enhanced to ~224 HV, a ~93% improvement over pristine GeTe (~116 HV). X-ray diffraction reveals a structural evolution toward a pseudo-cubic phase with increasing In content, and the (202) peak shifts to lower angles, indicating lattice expansion. These results demonstrate that synergistic RLs and van der Waals gaps effectively optimize carrier concentration and suppress thermal conductivity, offering a viable route for high-performance, mechanically robust GeTe thermoelectrics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4310-4
Electrically actuated microrobots, typically defined as devices under 5 cm in length and 5 g in mass, offer distinct operational advantages over thermally, magnetically, or optically driven counterparts, particularly at the centimeter scale where external field-generation hardware imposes prohibitive cost and redundancy. This review systematically examines the intrinsic coupling mechanisms between the electromechanical performance parameters of functional materials and the resulting locomotion modes of microrobots. The central premise is that material-level electromechanical properties—actuation strain, blocking force, energy density, and drive voltage—directly govern critical system-level capabilities including obstacle-crossing ability and energy efficiency. The authors analyze how distinct material classes, such as dielectric elastomers, piezoelectric ceramics, and shape-memory alloys, map to specific locomotion modalities, thereby delineating the current performance boundaries of the field. The review identifies that power supply and control strategy remain the two dominant bottlenecks limiting autonomous operation and long-duration mission execution. By establishing a direct correlation between material selection and locomotion performance, this work provides a structured framework for researchers to set research directions and performance targets. The analysis concludes with a summary of challenges and future trends, emphasizing the need for materials that simultaneously satisfy low drive voltage, high strain, and high power density requirements for real-world deployment in unstructured environments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4471-6
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 Materials•2026•DOI: 10.1007/s40843-026-4425-4
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 Materials•2026•DOI: 10.1007/s40843-026-4395-x
Electrocatalysts in lithium–sulfur (Li–S) batteries accelerate sulfur species redox reactions and restrict polysulfide shuttling, yet ideal electrocatalysts with remarkable bidirectional catalytic effects remain scarce. This work utilizes iron (Fe) to trigger bidirectional catalytic effects in a cobalt (Co) electrocatalyst, generating a metal alloy-based heterostructure of Co-Co7Fe3 dispersed homogeneously on carbon sheets (Co-Co7Fe3/CS). Electrochemical tests and in situ X-ray diffraction disclose significantly enhanced bilateral catalytic activity of Co-Co7Fe3 compared to bare Co, confirmed by self-discharge measurements. Post-cycling investigation validates protection of the Li metal anode from sulfur species corrosion. The Co-Co7Fe3/CS-modified coin cells deliver an exceptional rate capability of 603 mAh g–1 at 5.0 C and steady long-life cycling for 500 cycles at 1.0 and 2.0 C. Under high sulfur loadings and lean electrolyte conditions, an impressive areal capacity with stable cycling is realized. This work provides valuable insights for designing metal alloy-based heterostructures as advanced electrocatalysts in Li–S batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4494-9
Superionic conductors exhibit high cation mobility arising from weak binding and continuous transport pathways, atomistically characterized by extensive structural disorder and partial occupancy akin to amorphization. This disorder, whether confined to a cation sublattice or extended to full amorphization, strongly impedes lattice thermal transport, rendering these materials intrinsically ideal thermal insulators. This work investigates Ag26I18W4O16, a superionic conductor tunable from fully amorphous to single-crystalline states, as a model system to probe the impact of disorder and amorphization on thermal transport. Extensive Ag+ disorder, in both crystalline and amorphous phases, reduces thermal conductivity to approximately the theoretical lower bound of 0.16 W/m-K with virtually no temperature dependence, while concurrently achieving the lowest mean sound velocity ever recorded for a dense solid. Pair distribution function (PDF) analysis of synchrotron X-ray total scattering data indicates that short-range disorder (< 5 Å), rather than long-range periodicity, governs thermal insulation performance in both phases. These findings suggest a design strategy reconciling structural stability with glass-like thermal insulation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4447-3
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 Materials•2026•DOI: 10.1007/s40843-026-4311-y
Chronic infections caused by biofilms of drug-resistant bacteria pose a significant challenge in clinical treatment. Traditional NIR-I photothermal therapy has limitations, including restricted tissue penetration and potential damage to normal tissues due to high temperatures. While NIR-II light offers deeper penetration, there remains a scarcity of materials capable of simultaneously responding to both NIR-I and NIR-II wavelengths and integrating multiple sterilization mechanisms under mild conditions. In this study, a Fe-based high-entropy spinel oxide (HEOs) was designed and synthesized. Benefiting from lattice distortion induced by the high-entropy effect and the hybridization of multiple metal d-orbitals, the material achieves cooperative optimization of its electronic band structure. Consequently, it exhibits efficient broad-spectrum photothermal properties across both NIR-I and NIR-II regions alongside excellent peroxidase-like (POD) activity. Under dual-wavelength laser irradiation, the material enables mild yet efficient photothermal conversion (<50 °C) while simultaneously catalyzing hydrogen peroxide (H2O2) to generate abundant hydroxyl radicals (·OH), thereby constructing a synergistic antibacterial system combining dual-window photothermal therapy and enzymatic catalysis. In vitro experiments confirmed that the HEOs possesses potent bactericidal and biofilm eradication capabilities against both Gram-positive and Gram-negative bacteria. In a mouse model of drug-resistant bacterial wound infection, the material, assisted by either NIR-I or NIR-II laser irradiation, effectively cleared the infection, reduced inflammation, and promoted collagen deposition and angiogenesis, thereby significantly accelerating wound healing. This work not only provides a novel strategy for developing dual-window-responsive antibacterial materials for deep-tissue infections but also deepens the understanding of the structure-activity relationship in high-entropy materials at the electronic structure level.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4288-1
The high-temperature oxidation resistance of Cr2AlC MAX phase ceramics is severely compromised by rapid Al depletion and the formation of a brittle sub-surface Cr7C3 layer. This study elucidates how trace Y2O3 doping (0.25 and 0.5 wt.%) modulates the oxidation behavior of Cr2AlC at 1100 °C. The incorporation of 0.5 wt.% Y2O3 significantly suppresses the parabolic rate constant compared to undoped counterparts. This kinetic suppression is attributed to the Reactive Element Effect (REE), where Y3+ segregation at α-Al2O3 grain boundaries inhibits outward Al3+ diffusion, shifting the scale growth mechanism to inward oxygen diffusion control. Consequently, this retarded Al consumption prevents the decomposition of the Cr2AlC substrate into Cr7C3. While undoped specimens fail due to volume contraction and Kirkendall voiding associated with the Cr7C3 interlayer, specimens with the most effective doping content within the investigated range maintain a stable, atomically sharp α-Al2O3/Cr2AlC interface devoid of voids and decomposition products. The superior adhesion of this interface is attributed to three synergistic factors: the elimination of volumetric mismatch induced by phase transformation, the mechanical interlocking provided by Y-rich oxide pegs, and the intrinsically higher interfacial bonding strength of the α-Al2O3/Cr2AlC system as confirmed by DFT calculations. These findings provide a mechanistic framework for designing oxidation-resistant MAX phase ceramics via reactive element doping.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4324-4
Magnesium-oxygen (Mg-O2) batteries offer high theoretical energy density and low-cost earth-abundant magnesium, yet practical deployment has been impeded by poor cycling stability and low energy efficiency, primarily due to the sluggish decomposition of conventional MgOx discharge products. Here we demonstrate that trace water in the electrolyte redirects the cathodic reaction to form chemically reactive Mg2(OH)3Cl·4H2O as the main discharge product, enabling a new reversible pathway: 8Mg2+ + 4Cl- + 3O2 + 22H2O ⇋ 4Mg2(OH)3Cl·4H2O. This water-mediated chemistry significantly enhances redox reversibility compared with the MgOx route. The resulting Mg-O2 battery delivers over 324 stable cycles at 1000 mA·g-1 with a capacity of 500 mAh·g-1 and an energy efficiency of 92%, surpassing all previously reported Mg-O2 systems. The electrolyte comprises 0.25 M magnesium bis(trifluoromethanesulfonyl)imide (Mg(TFSI)2) and 0.5 M magnesium chloride (MgCl2) in ethylene glycol dimethyl ether (DME) with a trace amount of water. These findings establish a general strategy for reversible Mg-O2 electrochemistry and provide a new design paradigm for practical magnesium-based energy storage.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4468-6
The proliferation of multispectral detection platforms demands materials that simultaneously satisfy electromagnetic interference (EMI) shielding and infrared (IR) camouflage without compromising radio-frequency (RF) transmission. Conventional MXene films exhibit exceptional EMI shielding (>40 dB) but suffer from high IR emissivity and severe RF reflection, precluding integration with wave-transmitting arrays. This work introduces liquid metal (LM)-modified MXene composite films engineered via structural patterning to decouple optical, IR, and RF responses. The LM phase, dispersed within the MXene interlayer galleries, reduces free-electron density and tailors the dielectric loss, while a periodic array architecture creates impedance-matched windows for RF transmission. The resulting films achieve an EMI shielding effectiveness of 36 dB at 510 µm thickness, with a low IR emissivity of 0.36 and an RF transmittance exceeding 80% in the X-band. The patterning strategy suppresses surface current continuity, mitigating the trade-off between shielding and transmission. These metrics represent a 20% improvement in IR camouflage and a 15% enhancement in RF transparency relative to pristine MXene films. The composite films also demonstrate mechanical flexibility, retaining 95% of initial conductivity after 1,000 bending cycles. This work establishes a scalable route for multispectral-compatible materials critical for next-generation stealth and communication systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4426-y
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 Materials•2026•DOI: 10.1007/s40843-026-4263-3
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 Materials•2026•DOI: 10.1007/s40843-026-4275-3
Electrochemical in-situ production of active chlorine (AC) via chlorine evolution reaction (CER) can alleviate hull corrosion and residual chlorine overage, which is a highly reliable disinfectant for sewage and ballast water. Nonetheless, the primarily competitive oxygen evolution reaction and gradual anode passivation hinder its practical application. Herein, we employed the in-situ hydrothermal strategy to synthesize Ru/TiO2-x to realize high activity and selectivity of CER. The robust interaction of Ru sites and TiO2-x achieved via a one-step hydrothermal synthesis strategy, the structural and valence state characterizations confirm that Ti3+ stabilizes Ru solely in the metallic state (Ru0) via structural confinement effects, effectively inhibiting catalyst oxidation. As a result, the Ru/TiO2-x requires only an overpotential of 33 mV to reach 10 mA cm−2, and possess strong catalytic durability, sustaining continuous operation for 100 h with negligible current decay. Further integration with a triboelectric nanogenerators successfully realizes the generation of AC, which demonstrates a >99.9% inactivation efficiency against Escherichia coli in simulated seawater environments, while also effectively degrading ammonia nitrogen and urea contaminants in domestic wastewater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4238-2
Infrared nonlinear optical (IR NLO) materials are critical for laser frequency conversion, yet their performance is often constrained by a trade-off between second harmonic generation (SHG) efficiency and laser-induced damage threshold (LIDT). Here, we report a new ternary diamond-like compound, AlGaS3, which successfully balances these competing demands. AlGaS3 crystallizes in a noncentrosymmetric structure composed of wide HOMO-LUMO gap [AlS4] tetrahedra and NLO-active [GaS4] tetrahedra. The compound exhibits a wide experimental optical band gap of approximately 3.38 eV, which is significantly larger than that of the benchmark AgGaS2 (AGS, ~2.70 eV). This wide band gap contributes to a high laser-induced damage threshold (LIDT) of approximately 6.0 times that of AGS, as determined by powder-based measurements. Notably, AlGaS3 also demonstrates a phase-matching SHG response of approximately 0.5 times that of AGS at a fundamental wavelength of 2.09 μm, with particle size-dependent behavior confirming phase-matchability. The combination of wide band gap, high LIDT, and moderate SHG response positions AlGaS3 as a promising candidate for high-power IR NLO applications. This work provides a viable strategy for designing IR NLO materials with enhanced laser damage resistance by incorporating wide-gap tetrahedral units.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4502-1
Near-infrared-II (NIR-II, 1000-1700 nm) luminescent materials are pivotal for deep-tissue bioimaging and optical communication, yet their performance is often limited by low quantum yields and thermal quenching. Here, we report a thermal-enhanced NIR-II luminescence in Sb3+/Er3+ co-doped Cs3GdCl6 microcrystals synthesized via a modified Bridgman method. Under ultraviolet excitation, the co-doped microcrystals exhibit intense NIR-II emission centered at 1532 nm corresponding to Er3+: 4I13/2 → 4I15/2 transition, with a maximum relative sensitivity of 1.2% K−1 at 303 K. Notably, the integrated NIR-II emission intensity increases by 2.3-fold from 298 K to 373 K, demonstrating anomalous thermal enhancement. This behavior is attributed to the thermally activated energy transfer from Sb3+ sensitizers to Er3+ activators, as confirmed by temperature-dependent photoluminescence spectra and decay kinetics. The energy transfer efficiency reaches 86% at room temperature and further improves with rising temperature. The microcrystals also show excellent photostability, retaining 95% of initial intensity after 120 min continuous UV irradiation. Furthermore, we demonstrate a proof-of-concept wireless optical communication link using the microcrystals as a NIR-II phosphor, achieving a signal-to-noise ratio of 30 dB at 400 Hz modulation frequency. These findings provide a new strategy for designing thermal-enhanced NIR-II luminescent materials and expand their potential in temperature sensing and optical communication.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4138-5
Electrocoagulation (EC) has emerged as a promising electrochemical technology for wastewater treatment, offering distinct advantages over conventional chemical coagulation and membrane processes. This review systematically summarizes recent advancements in EC, focusing on the underlying mechanisms, key operating parameters, and diverse technical applications. The EC process involves three stages: electrolytic oxidation and in-situ coagulant formation, destabilization of contaminants, and floc formation. Unlike chemical coagulation, EC requires no external chemical additives, and process control is achieved by adjusting current density, voltage, or electrode materials, enabling adaptation to varying wastewater qualities. The review highlights the influence of dissolved organic matter (DOM) on EC efficiency, as clarified by Luo et al. (Water Research, 2025). Furthermore, it discusses reactor design innovations, including continuous-flow and cascade-type configurations, and the role of current waveforms in mitigating electrode passivation. The integration of EC with membrane bioreactors and forward osmosis is also examined, demonstrating enhanced treatment performance and fouling mitigation. Key challenges, such as energy consumption and electrode scaling, are addressed, along with future research directions. This comprehensive analysis provides a critical framework for optimizing EC systems and scaling them for industrial wastewater treatment, emphasizing the need for holistic reactor design and process integration to achieve sustainable water reuse.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4244-0
Near-infrared perovskite light-emitting diodes (NIR-PeLEDs) suffer from poor operational stability, largely due to interfacial reactions at the electron-transport layer (ETL)/perovskite interface. Here, we introduce a zinc ion (Zn2+)-chelated hybrid ETL derived from a Zn2+-chelated polyethylenimine ethoxylated (PEIE) complex, which partially retains the surface properties of ZnO but exhibits significantly reduced oxygen defects and surface-adsorbed hydroxyl groups. This well-modulated surface promotes perovskite crystallization and mitigates interface-induced deprotonation of organic cations during device operation. Consequently, NIR-PeLEDs employing this hybrid ETL achieve a peak external quantum efficiency (EQE) of 20.1%, a high radiance of 652 W sr-1 m-2, and an exceptional T50 lifetime of 270.7 hours at a high current density of 100 mA cm-2, which is over five times that of devices based on conventional ZnO nanocrystal (NC) ETLs. Our results present an effective ETL strategy for operationally stable NIR-PeLEDs and thoroughly reveal the critical role of regulating interfacial reactions in stabilizing buried interfacial contacts. These findings provide valuable insights for advancing perovskite optoelectronic devices that suffer from interface-induced performance degradation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4295-5
Carbon nanomaterials (CNMs), including carbon nanotubes, graphene, and fullerenes, exhibit exceptional promise in precision biomedicine due to their tunable biocompatibility, programmable surface chemistry, large specific surface area, and quantum confinement effects. However, their clinical translation is hindered by aggregation, poor physiological dispersibility, and limited targeting specificity. This review systematically elaborates on surface engineering strategies—covalent functionalization, non-covalent assembly, and heteroatom doping—to optimize the multifunctionality, biocompatibility, and targeting capabilities of CNMs at the nano-bio interface. We explore how engineered interfaces enable advanced applications in biosensing, stimuli-responsive drug delivery, multimodal bioimaging, antibacterial therapy, and regenerative tissue engineering. The review also addresses challenges such as scalability, long-term toxicity, and regulatory hurdles, and proposes future directions to expedite clinical adoption. By providing a comprehensive framework for rational surface design, this work aims to bridge the gap between fundamental materials science and clinical needs, offering a roadmap for developing next-generation carbon-based theranostics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4269-4
Self-assembled molecular interlayers (SAMs) are promising hole-selective contacts for high-efficiency organic solar cells (OSCs) due to their well-defined energy alignment and minimal parasitic absorption. However, their intrinsically limited mechanical robustness often leads to structural degradation and performance loss under mechanical deformation, restricting their application in flexible devices. Here, we report a nanoparticle-reinforced self-assembled composite interface that simultaneously enhances mechanical reliability and optoelectronic performance. Uniformly dispersed SiO2 nanoparticles are introduced as high-modulus reinforcing building blocks without disturbing molecular self-assembly. In contrast to NiOx nanoparticles, which suffer from aggregation and parasitic absorption, SiO2 nanoparticles exhibit excellent dispersion and optical transparency, enabling formation of a structurally compatible hybrid interface. Mechanistic studies reveal that SiO2 nanoparticles redistribute interfacial stress and form dynamic hydrogen-bond networks with phosphonic acid groups of 2PACz, providing efficient energy dissipation during cyclic deformation. Meanwhile, modulation of interfacial polarity extends the crystallization time window of the active layer, resulting in enhanced molecular ordering and improved charge transport. As a result, devices based on the SiO2/2PACz composite interface achieve a power conversion efficiency of 20.14% for rigid devices and 19.30% for flexible devices, placing the flexible devices among the highest-performing flexible OSCs reported to date, while retaining over 90% of their initial efficiency after repeated bending cycles. This work establishes a general strategy for overcoming the trade-off between electronic selectivity and mechanical robustness in ultrathin self-assembled molecular interfaces, providing design insights for high-performance flexible organic optoelectronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4260-5
Lithium-sulfur batteries (LSBs) are recognized as a leading candidate for next-generation energy storage due to their high theoretical specific capacity (1675 mAh g⁻¹). However, the shuttle effect of lithium polysulfides (LiPSs) severely limits cycle life and energy efficiency. Here, we report a multi-interface engineering strategy employing a MnO₂-TiO₂@Ti₃C₂ MXene (MT@MX) heterojunction, synthesized via a facile redox reaction between MXene and KMnO₄, to modulate bidirectional polysulfide conversion. The 2D structure with high conductivity and abundant heterogeneous interfaces facilitates fast ion/electron transfer, reduces reaction energy barriers, and enhances adsorption via d-band center effects. The stepped built-in electric field (BIEF) in MT@MX lowers the migration energy barrier of LiPSs from catalytic MXene to TiO₂ and then to adsorptive MnO₂, enabling reversible migration across multi-interfaces. Optimized heterointerfaces synergistically integrate adsorption, diffusion, and catalytic conversion, yielding excellent cycling stability even at a high sulfur loading of 6.4 mg cm⁻². This work demonstrates that constructing heterojunctions with stepped BIEF offers a feasible approach to modulate interfacial diffusion and provides a new design strategy for high-performance LSB electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4319-x
This erratum corrects an error in the Acknowledgments section of the original article 'Investigation on graphene growth by roll-to-roll chemical vapor deposition' published in Science China Materials, Vol. 65, Issue 4, page 1042, 2022. The authors regret that the funding number (No. (2021)105) for the Shenzhen Science and Technology Program was incorrectly used. The correct funding number is No. KQTD20200820113010022. The authors apologize for any inconvenience caused. This correction does not affect the scientific content, results, or conclusions of the original paper. The original research focused on the kinetics of graphene growth via roll-to-roll chemical vapor deposition (CVD), a scalable method for producing high-quality graphene films. The study addressed challenges in continuous manufacturing, such as uniformity, growth rate, and defect control, and provided insights into optimizing process parameters for industrial-scale production. The erratum ensures accurate attribution of funding sources, maintaining the integrity of the research record.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4350-4
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 Materials•2026•DOI: 10.1007/s40843-026-4202-3
Carbon dots (CDs) with absorption in the second near-infrared window (NIR-II, 900-1700 nm) hold promise for tumor theranostics, yet existing synthesis methods often involve complex procedures, harsh conditions, or lack precise control. Here we report a 'self-photooxidation-restructuring' strategy that enables structural reorganization of the carbon core in CDs, achieving a significant redshift of absorption into the NIR-II region. Under ultraviolet (UV) light irradiation, the precursor (B-CDs, absorption in UV region) generates singlet oxygen, which self-oxidizes aldehyde groups and the carbon skeleton of B-CDs to stronger electron-withdrawing carboxyl groups and carbon radicals, respectively. These processes facilitate the formation of new C=C bonds between isolated aromatic domains, thereby transforming B-CDs into novel CDs (N-CDs) characterized by enhanced donor-acceptor interactions and a redshift in absorption toward the NIR-II window. Various experimental data, including high-resolution XPS, FTIR, NMR, EPR, have proved the proposed formation mechanism. The novel N-CDs afforded a high photothermal conversion efficiency of up to 71.33%, which enabled 1064 nm laser-activated photoacoustic imaging (PAI)-guided photothermal therapy (PTT) in tumors. This work opens a new avenue for the synthesis and modulation of CDs in the NIR-II region.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4354-9
This review systematically examines the synthesis-structure-property relationships of hybrid graphene and carbon fiber reinforced composites, encompassing polymer, metal, and ceramic matrix systems. The hybridization of graphene with carbon fibers addresses the intrinsic limitations of conventional composites, such as weak interfacial bonding and insufficient multifunctionality. The review consolidates recent advances in fabrication strategies, including electrophoretic deposition, layer-by-layer assembly, and precursor impregnation, which enable controlled graphene distribution and orientation. Critical analyses of mechanical, tribological, electrochemical, and anti-ablation properties reveal that graphene addition significantly enhances interfacial shear strength, thermal stability, and electrical conductivity. For instance, in copper matrix composites, the incorporation of reduced graphene oxide with short carbon fibers improves tribological performance, reducing wear rates under specific load conditions. In ceramic matrix composites, graphene-modified C/C-SiC composites exhibit superior anti-ablation resistance, with mass loss rates reduced by up to 30% at elevated temperatures. Furthermore, graphene-coated carbon fiber electrodes demonstrate high specific capacitance and cycling stability in energy storage applications. The review also addresses challenges such as dispersion uniformity, scalability, and cost-effectiveness, proposing future directions for industrial adoption. By providing a comprehensive framework, this work guides the design of next-generation hybrid composites tailored for aerospace, automotive, and energy storage sectors.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4373-2
Infrared stealth technology demands materials with simultaneously low infrared emissivity and robust environmental stability. Traditional coatings suffer from high emissivity or poor thermal stability. Here, we report Sr-doped SmCoO3 perovskite ceramics achieving a record-low room-temperature infrared emissivity of 0.12 in the 8–14 μm atmospheric window. Systematic doping (x = 0, 0.1, 0.2, 0.3, 0.4, 0.5) via solid-phase synthesis reveals that Sr substitution induces a Co3+/Co4+ mixed valence state, increases oxygen vacancy concentration, and distorts the lattice. First-principles calculations (CASTEP) confirm that doping narrows the bandgap from 1.8 eV to 0.9 eV and enhances the double-exchange interaction, boosting carrier concentration and mobility. The optimized composition (x = 0.3) exhibits an electrical conductivity of 1.2×10^3 S/cm and a carrier density of 3.5×10^21 cm^-3, leading to strong infrared reflection. The material maintains emissivity below 0.15 after 100 hours of thermal cycling at 300°C and 500 hours of humidity exposure (85°C/85% RH), demonstrating exceptional environmental durability. This work establishes a new paradigm for designing high-performance inorganic infrared stealth materials via electronic-structural synergy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4360-7
Polarization-sensitive photodetection is critical for advanced optical communication and imaging systems, yet conventional photodetectors suffer from low on-off ratios and limited polarization discrimination. Here, we report gate-tunable PdSe2/WSe2 van der Waals heterostructures that achieve ultrahigh light on-off ratio and polarization-sensitive photodetection. The heterostructure forms a type-II band alignment, enabling efficient charge separation and self-powered operation. By applying a gate voltage, the photoresponse can be modulated, achieving an on-off ratio exceeding 10^6 under illumination. The device exhibits a high responsivity of 1.2 A/W and a specific detectivity of 10^12 Jones at room temperature. Polarization-sensitive measurements reveal a linear dichroism ratio of 2.1 at 532 nm, attributed to the anisotropic crystal structure of PdSe2. The photodetector operates over a broad spectral range from visible to near-infrared (400-1000 nm) with fast response times (rise/fall < 100 μs). The gate-tunable capability allows dynamic control of the photocurrent, enabling adaptive sensing applications. These results demonstrate that PdSe2/WSe2 heterostructures are promising candidates for high-performance, polarization-sensitive photodetectors, offering a pathway for next-generation optoelectronic devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4368-y
Stretchable pixelated electronic devices face a fundamental design conflict: accommodating mechanical deformation while preserving a high fill factor of active photosensitive elements. Conventional strain-relief strategies, such as pop-up, serpentine, and kirigami structures, rely on geometric unfolding that inevitably consumes inactive area, reducing pixel density and compromising photoresponse intensity, spatial resolution, and signal-to-noise ratio. In a recent breakthrough published in Nature Materials, Park et al. demonstrated a high-fill-factor silicon–liquid metal pixelated platform for multiscale visual acquisition and depth perception. The device integrates ~700-nm-thick ultrathin single-crystalline silicon photodiodes, finely patterned liquid metal interconnects, and a styrene–butadiene–styrene (SBS) elastomer substrate. The silicon pixels provide high-performance photoelectric conversion, while the liquid metal interconnects accommodate deformation, achieving a functional separation that mitigates the trade-off between pixel density and mechanical compliance. The device maintains stable photodiode characteristics and repeatable photoresponses under high-curvature hemispherical stretching and large biaxial tensile strain. Two applications were demonstrated: a human-eye-inspired robotic vision system with a curved photosensitive surface for wide-field imaging, and an epidermal, lensless, near-contact imaging device for close-range image acquisition. These systems enable multiscale visual acquisition and depth perception, offering a scalable route for future stretchable visual electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4292-4
The vast compositional space of high-entropy materials presents a fundamental challenge for catalyst discovery. Considering 21 candidate elements at a 1% atomic resolution, this combinatorial explosion exceeds 10 billion (>10^10) possibilities, rendering direct experimental exploration impractical. Furthermore, purely data-driven approaches often struggle to comprehend the intrinsic chemical roles of discrete elemental identities, yet they excel at mapping continuous concentration gradients. Recognizing this distinction, we transform this combinatorial explosion into a targeted optimization problem by decoupling elemental selection from compositional ratio refinement. Ultrafast carbon thermal shock (CTS) is first employed to screen viable elemental combinations and establish an optimal quinary framework. Machine learning (ML) is subsequently applied to optimize compositional ratios within this reduced space, where statistical modeling efficiently navigates the remaining high-dimensional landscape. Targeting the oxygen evolution reaction (OER) as a proof-of-concept, our hybrid framework pruned the search space from over 10^10 possible compositions down into 13 systems, ultimately identifying high-entropy oxide (HEO)-Fe17.57Co28.45Ni31.27Mo10.57Zr12.14 as the optimal catalyst. The optimized high-entropy oxide exhibits an overpotential of 240 mV at 10 mA cm−2 and sustains stable operation at 1 A cm−2 for over 600 h in 1 M KOH. Mechanistic analysis reveals that Mo electronically tunes oxygen-intermediate adsorption, while Zr enhances structural robustness, collectively enabling high activity and durability. This work demonstrates that bridging discrete physical screening with continuous data-driven optimization provides an efficient and generalizable pathway for navigating high-dimensional material frontiers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4385-1
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 Materials•2026•DOI: 10.1007/s40843-026-4369-1
Sodium-ion batteries (SIBs) are promising alternatives to lithium-ion batteries for large-scale energy storage due to sodium's abundance and low cost. Among cathode materials, polyanionic compounds like Na3V2(PO4)2O2F (NVPOF) offer high energy density and dual voltage plateaus at ~3.6 and 4.0 V, but suffer from low electronic conductivity and sluggish Na+ diffusion. Here, we report a dual-modulation strategy combining high-valence Nb5+ doping and polydopamine-derived carbon coating to synthesize Na3V1.94Nb0.06(PO4)2O2F-C (NVPOF-Nb-C) via a hydrothermal route. X-ray diffraction and Rietveld refinement confirm that Nb5+ doping induces slight lattice expansion without altering the tetragonal I4/mmm framework. Density functional theory calculations reveal that Nb5+ doping optimizes the crystal structure and reduces the Na+ diffusion barrier, while the uniform carbon coating enhances electron transport. Consequently, NVPOF-Nb-C exhibits remarkably improved electrochemical performance, including high reversible capacity, excellent rate capability, and ultralong cycling stability. In a full cell with hard carbon anode, it delivers a high energy density of 487.2 Wh kg−1 at 1C and retains 91.51% capacity after 3000 cycles at 20C. This work provides a synergistic strategy to overcome the intrinsic limitations of polyanionic cathodes for practical SIB applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4220-x
High-temperature electronics demand non-volatile memories (NVMs) capable of stable operation above 500 °C for applications in space exploration, nuclear energy, and autonomous driving. Conventional silicon-based devices fail above ~250 °C, and silicon carbide (SiC) cannot process data above 300 °C. Memristors offer a promising solution due to their simple structure, low power consumption, and scalability. A recent breakthrough by Yang et al. (Science) demonstrated a graphene (Gra)/HfOx/W memristor achieving data retention at 700 °C, with retention time of 50 h, endurance of 10^9 cycles, ON/OFF ratio exceeding three orders of magnitude, and operation voltage ~1.5 V. The key innovation is replacing the Pt bottom electrode with in-situ grown graphene, which suppresses high-temperature diffusion of the W top electrode through the HfOx layer. In contrast, Pt/HfOx/W devices fail after annealing at 800 °C for 10^4 s due to W migration, forming conductive filaments that lock the device in the ON state. High-resolution TEM and EDS reveal tungsten oxide (WOx) formation at the W/HfOx interface in Pt-based devices, while Gra-based devices show no such degradation. STEM-EELS confirms W migration across the HfOx layer in Pt devices, but graphene acts as a diffusion barrier, preserving stable switching behavior. This interfacial engineering approach provides a viable pathway for high-temperature NVM, addressing the critical bottleneck of electrode diffusion.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4235-6
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 Materials•2026•DOI: 10.1007/s40843-026-4176-y
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 Materials•2026•DOI: 10.1007/s40843-026-4237-x
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 Materials•2026•DOI: 10.1007/s40843-026-4192-y
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 Materials•2026•DOI: 10.1007/s40843-026-4287-1
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 Materials•2026•DOI: 10.1007/s40843-026-4322-4
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 Materials•2026•DOI: 10.1007/s40843-026-4207-0
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 Materials•2026•DOI: 10.1007/s40843-026-4337-2
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 Materials•2026•DOI: 10.1007/s40843-026-4197-4
Deep-blue organic light-emitting diodes (OLEDs) remain the most challenging primary-color emitters due to stringent exciton energy requirements. We strategically designed two innovative deep-blue emitters, SCZ-4AnCN and STPA-4AnCN, via systematic functionalization of an anthracene core with arylamino-decorated spirofluorene donors and cyano-substituted phenyl acceptors. Comprehensive theoretical and experimental analyses demonstrate that these spirofluorene-anthracene hybrids adopt precisely engineered distorted configurations, effectively suppressing detrimental intermolecular π–π stacking in condensed phases. The sp3-hybridized bridgehead carbons in spirofluorene units play a pivotal role by simultaneously restricting π-conjugation extension and fine-tuning donor–acceptor interactions, thereby stabilizing the lowest excited singlet (S1) state with dominant local excitation (LE) character. This molecular engineering yields exceptional deep-blue emission with remarkable efficiency. Notably, the materials exhibit unique high-lying reverse intersystem crossing (hRISC) behavior, enabling efficient triplet harvesting. Optimized doped devices incorporating SCZ-4AnCN achieve outstanding performance, including a maximum external quantum efficiency (EQE_max) exceeding 10% and CIE coordinates (0.154, 0.052) approaching the BT.2020 blue standard. Nondoped devices maintain impressive performance with an EQE_max of 7.51% and superior operational stability, demonstrating less than 10% efficiency roll-off at 1000 cd m−2. This work validates anthracene-based molecular architectures for deep-blue electroluminescence and establishes a transformative design paradigm for next-generation OLED emitters.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4199-8
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 Materials•2026•DOI: 10.1007/s40843-025-3865-1
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 Materials•2026•DOI: 10.1007/s40843-025-3536-5
Nanomaterial-based optical biomedicine and devices have attracted significant attention for tumor diagnosis and treatment, yet their application in tumor ablation is often hindered by limited functional integration and concerns over excessive radiation exposure. In this study, we address these challenges by developing a multifunctional fiber probe based on lanthanide-doped nanoparticles, featuring decoupled modules for localized heating and optical thermometry. This design enables synergistic therapy under near-infrared (NIR) laser irradiation. Beyond achieving precise photothermal ablation and real-time temperature monitoring, we uncovered a unique phenomenon: the generation of reactive oxygen species (ROS) by these nanoparticles under NIR laser excitation, even in the absence of traditional photosensitizers. Through a combination of experimental and computational approaches, we elucidated the physical mechanisms underlying ROS generation in wide-bandgap lanthanide nanoparticles. Leveraging these insights, we constructed an all-optical fiber system capable of simultaneous precise thermal control and photodynamic therapy. Our findings offer valuable guidance for the development of advanced optical nanomaterials and devices for effective tumor treatment, both in vivo and in vitro.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3828-y
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 Materials•2026•DOI: 10.1007/s40843-025-3709-4
Photoelectrocatalytic (PEC) detoxification of ofloxacin in hyposaline wastewater is hindered by weak built-in electric fields (IEF) and rapid charge recombination. Here, we report a crystal dipole engineering strategy using high-valence Mo-doped BiVO4 to enhance IEF and PEC activity. Mo incorporation breaks lattice symmetry, increasing the crystal dipole moment and amplifying IEF to 2.05 times that of pristine BiVO4. This promotes directional carrier migration, improving electron-hole separation efficiency. The optimized 4% Mo-BiVO4 photoanode achieves 96.5% ofloxacin degradation within 60 minutes and maintains 91.9% degradation efficiency in natural lake water containing saline and organic interferents, demonstrating exceptional anti-interference capability. This work provides a strategy for boosting photocatalytic performance through unit-cell dipole engineering, aiming to enhance sustainability in wastewater treatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3803-8
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 Materials•2026•DOI: 10.1007/s40843-025-3605-0
Nickel oxide (NiOx) is widely used as a hole transport material in inverted perovskite solar cells (PSCs). However, its practical application is limited by low intrinsic conductivity and insufficient hole extraction ability, leading to significant interfacial defects that reduce device efficiency and stability. To overcome these issues, two isomeric small organic molecules, 2,6-NOT and 1,5-NOT, were developed and introduced to modify NiOx. These isomers share the same structure but differ in the substitution positions of functional groups, resulting in distinct molecular planarity. Experimental results demonstrate that 1,5-NOT, featuring extended conjugation and enhanced planarity, more effectively enhances the hole extraction/transport capabilities and conductivity of NiOx compared to 2,6-NOT. The NiOx/1,5-NOT-based device achieves a remarkable power conversion efficiency (PCE) of 24.20%, along with excellent long-term stability, surpassing the NiOx control device (18.12%) and the 2,6-NOT-based device (21.87%). These findings indicate that modifying NiOx with small organic molecules significantly improves charge transport performance, and increasing molecular planarity is particularly beneficial for enhancing hole transport and reducing defect density, thereby increasing both efficiency and stability. This work provides a new strategy for NiOx modification via small organic molecules, offering a promising route to high-performance inverted PSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3676-3
Perovskite solar cells (PerSCs) have achieved remarkable efficiencies, yet their performance is limited by defect states and non-radiative recombination. Here, pyromellitic diimide (PD) is introduced as an additive to passivate bulk defects in perovskite films. PD forms hydrogen bonds with formamidinium (FA+) ions and coordinates with Pb2+ ions, effectively suppressing non-radiative recombination and reducing energy loss. The PD-treated perovskite films exhibit enhanced crystallinity and uniformity. Consequently, 1.55 eV PerSCs achieve a high open-circuit voltage (VOC) of 1.193 V and a power conversion efficiency (PCE) of 25.79%. Moreover, unencapsulated PD-treated devices retain 96% of their initial efficiency after 2000 h under nitrogen atmosphere, whereas control devices retain only 74%. Under ISOS-D-2I accelerated aging (65±5°C in N2), PD-treated devices show less than 5% PCE attenuation after 288 h, compared to ~30% for controls. This work provides a viable strategy for defect passivation in perovskite solar cells, enhancing both efficiency and stability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3559-5
Polyamide (PA) membranes are promising for lithium extraction from spent lithium-ion battery (LIB) leachate but face a trade-off between selectivity and permeability. Here, we demonstrate that nascent PA membranes post-grafted with triaminoguanidinium (TAG) monomers (PA-TAG membranes) gain expanded ion passage channels (0.8–7.1 Å) and enhanced positive charge, achieving high-performance lithium separation. The PA-TAG membrane exhibits a pure water permeance (PWP) of 15.5 L m−2 h−1 bar−1, superior divalent ion rejection (~98%), and an excellent separation factor (~30), significantly outperforming pristine PA membranes. In a simulated acidic battery leachate, the PA-TAG membrane achieved a relative volumetric lithium recovery rate of 48.2% after a two-stage nanofiltration process, with the Li+/M2+ mass ratio of the second permeate reaching 53.35, 445 times that of the feed (0.12). The membrane maintained stable performance over 45 hours of nanofiltration and resisted acidic conditions (pH=2) for at least 20 days. These results highlight the potential of PA-TAG membranes for efficient lithium extraction from acidic battery leachate, addressing the critical need for sustainable recycling of spent LIBs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3585-1
Semiconductor-based surface-enhanced Raman scattering (SERS) substrates have attracted significant attention due to their high uniformity, reproducibility, stability, and cost-effectiveness. However, the Raman enhancement in semiconductors primarily relies on the chemical mechanism (CM), which typically results in a lower enhancement capability compared to traditional noble metals. In this study, we developed a novel two-dimensional (2D) SERS substrate, Ag2Te nanosheets (NSs), synthesized through a simple one-step redox reaction utilizing 2D Te NSs as the template. The 2D Ag2Te NSs not only exhibit strong interfacial interactions with molecules, thereby supporting the CM, but also possess quasi-metallic properties with low resistivity (2.8 × 10−4 Ω cm) and high density of free electrons (4.15 × 10^22 cm−3), giving rise to a significant visible-region surface plasmon resonance (SPR) band and contributing to enormous electromagnetic mechanism (EM). By synergizing CM and EM, the 2D Ag2Te NSs SERS substrate achieved an ultra-low limit of detection (LOD) of 10−10 M with an enhancement factor (EF) of 2.6 × 10^7 for methylene blue (MB), outperforming most semiconductors, even rivaling noble metals. The quasi-metallic properties of 2D Ag2Te NSs also benefit their sensitivity to multiple molecules. The accuracy and reliability were demonstrated in real-sample detections with recoveries of 91.5%–108.3% for various target molecules. These excellent performances, combined with remarkable cost-effectiveness, demonstrate the potential of 2D Ag2Te NSs as a practical SERS substrate with broad applicability. Furthermore, the inherent structural simplicity of these nanosheets creates significant opportunities for further sophisticated nanostructural engineering to advance the SERS performance in the future.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3600-1
Two-dimensional planar pentagonal crystals, long pursued for their geometrically frustrated lattice configurations and emergent quantum phenomena, have remained challenging to realize due to the intrinsic incompatibility of regular pentagons with Euclidean tiling. Here, we unveil 37 dynamically stable binary planar pentagonal monolayers through high-throughput computational screening of 1470 stoichiometric candidates. These materials exhibit room-temperature magnetism, including ferromagnetic (Curie temperature up to 521 K), antiferromagnetic (Néel temperature up to 761 K), and altermagnetic (Néel temperature = 984 K) ground states, alongside unprecedented electronic states: Dirac semimetals, Dirac half-metal, nodal-loop semimetal, nodal-loop half-metal, and altermagnetic semiconductors (Mn4N2) with giant spin splitting (0.78 eV). The latter achieves pure spin-polarized transport windows (−0.04 to 0.36 eV) and strain-tunable valley splitting (18.2 meV under 4% uniaxial strain). Intrinsic type-II multiferroicity emerges in Fe4C2 and Mn4C2, featuring in-plane electric polarization (1.4 and 1.6 pC/m), ferroelasticity (0.8% and 1.2% reversible strain), and reversal chirality. Topological band analysis identifies chiral edge states in Dirac semimetal pentagons, alongside a magnetic topological insulator with Chern number |C| = 2 in Mo2S4 and W2Te4. Temperature-driven structural transitions in Os2S4 and Tc2S4 from pentagonal to Lieb lattices accompany topological state switching and metal-to-semiconductor transitions. This work establishes pentagonal lattices as a platform for symmetry-driven multifunctionality, bridging geometric frustration with applications in spintronics, nanoelectronics, and quantum devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3615-1
Stretchable electronics are pivotal for bio-integrated devices, soft robotics, and wearables, yet their development is constrained by single-layer architectures that limit integration density and by mechanical mismatch between rigid components and soft substrates, which curtails service life. Here, we introduce a LEGO-like modular assembly strategy to construct multilayer three-dimensional (3D) stretchable electronics. Electronic components (ECs) and self-healing polyurethane (SPU) substrates patterned with liquid metal (LM) circuits serve as the modular blocks. This design simplifies fabrication and markedly enhances 3D integration density. The combination of LM circuits and self-healing elastic substrates enables devices to withstand diverse deformations and to autonomously heal after mechanical damage. Notably, the devices can undergo multiple recycling and reuse cycles without significant performance loss. This methodology offers a new paradigm for advanced flexible electronics, addressing critical bottlenecks in integration density, mechanical robustness, and sustainability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3645-3
Postoperative abdominal adhesion, a complication with morbidity exceeding 90%, imposes severe clinical and economic burdens. Existing bioadhesive barriers often exhibit unreliable adhesion to the slippery abdominal wall, risk mispositioning, and neglect frictional stimuli and inflammation. Inspired by the lubricated peritoneum, we developed a programmable adhesive dual-layer Janus patch (DJP) barrier integrating a lubricated layer and an adhesive matrix. DJP achieves rapid, noncovalent interfacial adhesion, subsequently enhanced 2.81-fold via covalent interactions, enabling repositioning within a short time window to improve surgical fault tolerance. The micron-scale poly(sulfobetaine methacrylamide) brush on the DJP surface provides hydration lubrication with a low coefficient of friction (0.06), mimicking peritoneal lubrication and reducing frictional damage to injured tissue. The catechol-containing copolymer confers antioxidative and anti-inflammatory properties, confirmed in vitro. In a rat model, DJP adhering to the injured site significantly reduced collagen deposition between the abdominal wall and cecum, preventing adhesion and promoting tissue healing compared to commercial barriers. This work provides a guiding reference for developing antiadhesive biomaterials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3554-7
Perovskite solar cells (PSCs) have achieved a record power conversion efficiency (PCE) of 27.0%, rivaling silicon-based cells while halving cost, positioning them near commercialization. However, long-term outdoor stability of industrial-scale perovskite solar modules (PSMs) remains a critical challenge. Guo et al. report a milestone: an industrial-scale PSM (aperture area 785 cm2) with a PCE of 19.6% and projected T80 (time to 80% of initial PCE) exceeding 6.7 years under light-dark cycling. The PSM demonstrated stability comparable to commercial silicon solar cells during 45 days of outdoor operation. The key innovation is perovskite surface reconstruction via vapor-deposited terpyridine (Tpy), which reorganizes defective [PbI6]4− octahedra into a zero-dimensional (0D) structure with fully isolated octahedra, eliminating irreversible ion migration. Grazing-incident wide-angle X-ray scattering confirmed formation of (Tpy)2PbI6 on the surface. Time-of-flight secondary-ion mass spectrometry showed that the 0D layer confines iodine migration, making it reversible during light-dark cycles, whereas pristine films exhibit irreversible migration. Temperature-dependent conductivity revealed increased activation energy for ion migration from 0.43 to 0.68 eV. The treated films exhibited photoluminescence lifetime of 532.6 ns and trap density of 1.57×10^15 cm−3. Small-area devices (0.16 cm2) achieved PCE of 25.3%, while scaled modules (785 cm2) retained 19.6%, a new world record. This surface isolation treatment offers a scalable route to stabilize large-area PSMs for outdoor deployment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3635-6
Oxygen anionic redox (OAR) is pivotal for achieving extra lithium storage in high-energy-density Li-ion batteries, yet its activation and stabilization remain challenging. Traditionally, OAR is studied in crystalline layered oxides with ordered frameworks and transition metal (TM)-centered octahedral coordination, where the Li-O-Li configuration is considered a prerequisite for creating unhybridized O 2p states. However, recent findings indicate that the presence of unhybridized O 2p states, rather than a specific configuration, is essential for oxygen activation. This study reports a novel OAR mechanism in an amorphous Li-V-O-F cathode, operating at a moderate voltage of 4.1 V, distinct from conventional Li-O-Li configurations. The cathode, initially crystalline LiVO2.98F0.02 (F2), undergoes amorphization after the first charge-discharge cycle, as evidenced by ex situ XRD, HRTEM, and EXAFS. Resonant inelastic X-ray scattering (RIXS) and X-ray absorption spectroscopy (XAS) reveal that the initial charge involves O-O formal redox without oxidized oxygen features, indicating electron holes are accommodated via O-O interactions. Reversible OAR activity emerges in the second cycle, confirming O-O dimerization in the amorphous phase. Ab initio molecular dynamics (AIMD) simulations further elucidate the mechanism. This work challenges the conventional Li-O-Li paradigm and opens new avenues for designing high-capacity cathode materials through amorphization and tetrahedral coordination.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3528-5
The advancement of hypersonic vehicles and advanced propulsion systems demands materials capable of withstanding extreme temperatures exceeding 3000°C in oxidizing environments. Conventional refractory metals and carbon-based composites suffer from severe degradation due to creep and oxidation, while ultrahigh-temperature ceramics (UHTCs) have been limited by the melting points of their oxidation products, such as HfO2 (~2758°C). The introduction of high-entropy ceramics (HECs) in 2015 offered tunable properties and enhanced oxidation resistance, yet achieving oxidation resistance above 3000°C remained elusive. This highlight reports the pioneering work of Chu et al., who developed a high-entropy carbide, (Hf, Ta, Zr, W)C (HEC-W), demonstrating unprecedented oxidation resistance at 3600°C. Using a laser oxidation platform capable of reaching 3809°C, HEC-W exhibited a linear ablation rate of 2.7 μm s−1 under a heat flux of ~30 MW m−2, outperforming previously celebrated UHTCs. The superior performance is attributed to a dual-structural oxide layer comprising high-melting-point tungsten particles (3422°C) embedded in a molten oxide matrix of (Hf,Me)6(Ta,Me)2O17 (melting point ~2450°C) and minor (Hf,Me)O2 phases. This layer seals defects and hinders oxygen diffusion, with oxidation kinetics following a parabolic trend and an activation energy of 149.7 kJ mol−1. Advanced computational simulations, including DFT, AIMD, and MD, provide mechanistic insights. This breakthrough shatters the 3000°C barrier, positioning HEC-W as a leading candidate for next-generation thermal protection systems.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(25)61033-X
Carbon-based materials have gained significant attention in anticancer treatment due to their exceptional biocompatibility, yet critical challenges persist in establishing definitive correlations between their porous structures and functional performance. We report the use of a silica template to guide pore formation in the design of mesoporous carbon spheres (mC) with tailored pore structures for improved combined photothermal-chemotherapy. The mesopore size of mC was adjusted by kinetic control of resin polymerization and silica hydrolysis. Structural characterization showed that 4.4 nm mesopores enabled an exceptional gemcitabine loading of 228 mg g−1 and a sustained pH/thermal dual-responsive release with >70% drug release under near-infrared (NIR) irradiation. Finite element analysis demonstrated pore size-dependent heat transfer dynamics, with the improved mC achieving a superior photothermal conversion efficiency of 62% by a combination of N-doping and defect engineering. In vitro evaluations confirmed outstanding biocompatibility with >95% cell viability at 200 μg mL−1 and potent tumor suppression in pancreatic and biliary cancer models with an ~5% cell viability at 25 μg mL−1 where combined therapy showed a 3.7-fold increased cytotoxicity over monotherapy. The improved structure of mC facilitated cascade therapeutic effects with enhanced tumor permeability derived from NIR-triggered hyperthermia and prolonged therapeutic exposure due to pH-responsive drug release. This pore engineering strategy establishes a structure-function process for next-generation theranostic platforms, addressing the critical limitations of conventional pancreatic and biliary cancer therapies through spatiotemporal control of multimodal treatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3738-1
The escalating demand for intelligent and functional textiles, driven by technological advancements, has shifted focus from conventional attributes like warmth and aesthetics to smart functionalities. Natural biomass-derived polysaccharides, owing to their biocompatibility, biodegradability, renewability, and unique chemical structures, are pivotal for next-generation flexible wearable smart textiles. This review systematically outlines common natural polysaccharides (e.g., cellulose, chitosan, starch, alginate) used in such textiles, detailing their structural features and modification strategies. It critically evaluates current fabrication methods, highlighting their advantages and limitations. The performance characteristics, action mechanisms, and application scenarios of polysaccharide-based smart textiles are examined, with emphasis on healthcare, motion tracking, smart clothing, and energy storage/management. The review concludes by addressing existing challenges and proposing future directions for integrating polysaccharide materials into smart textile systems, aiming to guide the development of efficient, green flexible wearable devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3575-4
Halide perovskite memristors, known for their ion mobility, have emerged as strong candidates for computational units in next-generation memory and neuromorphic computing systems. Nevertheless, most memristors are limited to operating in a single mode, either resistive switching or threshold switching. In this work, we overcome this limitation by developing dual-mode α-formamidinium lead triiodide (α-FAPbI3) perovskite memristors with switchable volatile/nonvolatile states, enabled by engineered SnO2 electron transport layers (ETLs). Through molecular interface optimization using 3-(N,N′-dimethylmyristylammonio) propanesulfonate (Z14) and 4,4′-(1,10-phenanthroline-3,8-diyl)bis(N,N′-bis(4-methoxyphen-yl)aniline) (PNL), we achieved exceptional device stability. Volatile devices exhibited >500 switching cycles, while nonvolatile devices surpassed 1000 cycles, both maintaining a high on/off ratio (~10^3). Beyond memory applications, these devices successfully emulated biological functionalities. The volatile mode replicated four key nociceptor characteristics (threshold, relaxation, sensitization, and no adaptation), while the nonvolatile mode demonstrated advanced synaptic plasticity, including paired-pulse facilitation (PPF) and spike-timing-dependent plasticity (STDP). Capitalizing on this dual-mode synergy, we constructed a spiking neural network (SNN) for handwritten digit recognition, achieving a 93% accuracy rate—a significant milestone for perovskite-based neuromorphic systems. This study not only provides a material-level strategy for multifunctional memristor design but also bridges the gap between biological sensing and artificial intelligence, paving the way for adaptive neuromorphic hardware.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3628-3
The solution aggregation structures of conjugated polymers are pivotal in determining their film morphology and optoelectronic properties, yet the relationship between solution aggregation and device performance remains elusive in organic photodiode (OPD) systems. Herein, we introduce the first examination of solution aggregation structures of all-polymer OPD blends, with a focus on how molecular entanglement modulates aggregation behavior and subsequent photodiode performance of low-cost poly(3-pentylthiophene). Using small-angle neutron scattering and freeze-dried imaging, we provide a comprehensive analysis of the solution-state aggregation behavior of poly(3-pentylthiophene) and its evolution in the blend, revealing profound impacts on film morphology and device performance. With finely optimized aggregation, the resulting all-polymer OPD achieves a record-high specific detectivity of ~4×10^13 Jones at zero bias, outperforming all bulk heterojunction (BHJ)-type self-powered OPDs reported to date. This device also demonstrates remarkable thermal stability, with negligible performance degradation after over 800 h of thermal annealing at 85 °C. Furthermore, the self-powered OPD exhibits excellent performance across a broad spectral range, enabling its application in both water quality monitoring and biosensing. This work offers new insights into the solution aggregation behavior of conjugated polymers in OPDs and highlights the importance of resolving solution aggregation in optimizing device function.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3677-9
The demand for high-performance scintillators in high-temperature applications, such as industrial flaw detection and oil exploration, necessitates materials with both high efficiency and thermal robustness. This work reports Tb3+-doped oxyfluoride glass scintillators exhibiting anti-thermal-quenching radioluminescence (RL). Three synergistic strategies were employed: (i) an oxyfluoride glass host providing a low-phonon-energy environment, (ii) increased structural densification of the glass network, and (iii) thermally enhanced energy transfer from Ce3+ to Tb3+. The resulting scintillators achieve an optical transmittance exceeding 88% at 542 nm, a record RL intensity of 350% relative to a standard Bi4Ge3O12 (BGO) crystal, and an imaging resolution of 24 lp mm−1. Notably, the RL intensity at 633 K reaches 143% of its room-temperature (303 K) value, demonstrating significant anti-thermal-quenching behavior. In contrast, commercial BGO and CsI:Tl scintillators exhibit RL intensities dropping to approximately 1% under identical conditions. These results establish the potential of Tb3+-doped glass scintillators for high-temperature X-ray imaging and provide a strategic framework for developing thermally robust scintillating materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3637-6
Traditional optical fiber communication encryption methods lack sufficient dynamic adaptability and hardware flexibility, while reconfigurable logic gates can overcome this limitation, thereby significantly improving the flexibility of encryption systems. This study reports a reconfigurable optoelectronic logic gate (OELG) system based on hafnium-zirconium oxide (HZO) ferroelectric thin films. Through ultra-low temperature atomic layer deposition technique, the fabricated HZO thin films demonstrate an exceptional pyroelectric coefficient of 1835.91 μC m−2 K−1 and robust multi-level polarization stability, enabling efficient broadband photon-to-current conversion. By leveraging the pyroelectric effect and tunable polarization states, the OELG device achieves dynamic optical signal modulation and logic processing. The OELG device supports five fundamental logic operations (AND, OR, NAND, NOR, NOT) via electrical bias and polarization control, without requiring hardware modifications. The OELG device demonstrates stable performance over 10^9 cycles with no degradation, meeting practical application requirements. Furthermore, a convolutional neural network (CNN)-integrated image encryption-decryption framework was validated, achieving 95.01% recognition accuracy on decrypted data, while unauthorized decryption attempts resulted in significant feature loss. This study addresses security challenges in optical communication networks by proposing an innovative solution that integrates pyroelectric materials with reconfigurable logic gate technology, offering a new pathway to enhance physical-layer security.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3630-2
This study demonstrates a dual-interface engineering approach for performance enhancement in perovskite-silicon tandem solar cells. By applying ethylenediamine dihydroiodide (EDAI2) to simultaneously modify both top and bottom interfaces of wide-bandgap perovskite layers, we achieve synergistic defect suppression and charge transport optimization. Time-resolved photoluminescence characterization reveals extended carrier lifetimes and improved spatial homogeneity in dual-modified perovskite films. The optimized single-junction wide-bandgap (>1.66 eV) perovskite solar cells attain a champion efficiency of 22.75% with enhanced operational stability. Implemented in perovskite-silicon tandem configuration, the devices achieve over 31% power conversion efficiency, validating the effectiveness of organic ligand-mediated dual-interface engineering in regulating carrier dynamics and advancing perovskite-based tandem photovoltaics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3746-x
The polyanionic compound Na3V2(PO4)2O2F (NVPOF) possesses a stable three-dimensional framework, high theoretical specific capacity, and favorable operating voltage, yet its sluggish Na+ diffusion kinetics and low electronic conductivity impede industrial application. This study proposes a dual regulation strategy combining carbon coating and heat treatment temperature to synergistically enhance crystallinity and electrochemical performance. NVPOF@C-400 and NVPOF@C-600 were synthesized via in-situ dopamine hydrochloride coating followed by heat treatment at 400 °C and 600 °C, respectively. Carbon coating at 600 °C significantly improved crystallinity and increased electronic conductivity by three orders of magnitude through the carbon layer's conductive network. The ~4.5 nm carbon layer effectively suppressed abnormal grain growth and secondary crystallization aggregation at high temperatures, maintaining uniform particle size of approximately 0.36 μm, which shortens Na+ diffusion pathways and prevents ion transport obstruction. Consequently, NVPOF@C-600 delivered a high discharge capacity of 102.5 mAh g−1 at 20 C and retained 96.5% capacity after 10,000 cycles. In a full-cell configuration with hard carbon (HC), NVPOF@C-600//HC achieved an impressive 89.3% capacity retention after 9,000 cycles. This work provides critical insights for practical implementation of high-performance NVPOF cathodes in sodium-ion batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3672-8
Pore-tuning engineering is an effective strategy for designing catalysts for energy storage and conversion. Here, we report a rhombic dodecahedral iron and nitrogen co-doped carbon (Fe-N-C) material with hierarchical micro-mesoporous structures, synthesized using mesoporous silica as both pore template and iron source. The resulting catalyst (m-Fe/NC) exhibits significantly enhanced oxygen reduction reaction (ORR) activity, with half-wave potentials of 0.81 V and 0.88 V in acidic and alkaline media, respectively. When employed as a cathode in zinc-air batteries, m-Fe/NC delivers a superior specific capacity of 815 mAh g_Zn^-1 and a stable cell voltage of 1.31 V at a current density of 10 mA cm^-2. Advanced characterization and theoretical calculations reveal that the mesoporous structure not only increases active site exposure but also induces a curvature-induced strain effect on concave surfaces, which enhances intrinsic activity. This work provides insights for developing innovative nanoporous electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3625-3
Zirconia (ZrO2)-based fluorite ferroelectric materials are promising for nonvolatile memory and logic devices due to their CMOS compatibility and cost advantages over hafnium oxide (HfO2). However, the metastable nature of the ferroelectric orthorhombic phase (o-phase) hinders practical application. Here, we report the strain-mediated stabilization of the ferroelectric o-phase in ZrO2 thin films grown on niobium-doped strontium titanate (NSTO) substrates with different crystallographic orientations via chemical solution deposition. Systematic structural and ferroelectric characterization, combined with simulation, reveals that substrate orientation controls in-plane tensile strain, selectively promoting epitaxial growth of the o-phase. The ZrO2 film on NSTO(110) exhibits the highest o-phase content, achieving a remanent polarization (2Pr) of 92.64 μC/cm², which remains as high as 88.54 μC/cm² after resistive-capacitive (RC) delay calibration. The device shows endurance of approximately 10^7 cycles with favorable fatigue characteristics. X-ray absorption spectroscopy (XAS) further indicates distortion of Zr-O tetrahedra, providing microscopic insight into the ferroelectricity. This work presents a novel strategy for property tuning of ZrO2 films and supports their application in storage and logic devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3719-8
The proliferation of 5G communications and smart electronic devices has intensified electromagnetic wave (EMW) pollution, necessitating microwave absorption materials (MAMs) with high efficiency, lightweight, and flexibility. Traditional MAMs suffer from high density and narrow effective absorption bandwidth (EAB). This work presents a lightweight, flexible microwave-absorbing composite fabricated by in-situ polymerization foaming of polyurethane (PU) with multi-walled carbon nanotubes (MWCNTs) and flaky carbonyl iron (FCI). The hierarchical PU composite foam, designated 3*PFC 0.5-1.0-1.5, achieves an EAB of 15.7 GHz, covering 98.1% of the tested 2–18 GHz range, including S, C, X, and Ku bands. This performance stems from synergistic conductive and magnetic losses, along with impedance matching facilitated by the hierarchical porous structure. The composite maintains low density and high compressibility, offering a promising solution for EMW absorption in 5G, military stealth, and smart devices. The in-situ method ensures strong interfacial adhesion between fillers and matrix, enhancing durability compared to impregnation methods. This study demonstrates a scalable approach to fabricate high-performance MAMs with broad bandwidth and mechanical robustness.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3686-6
Fused silica (SiO2) exhibits exceptional thermal stability and dielectric properties, making it an attractive material for aerospace and military applications. However, its relatively poor mechanical performance has limited its widespread practical utilization. This study proposed an innovative approach to fabricate SiO2-hexagonal boron nitride (hBN) composite ceramics via spark plasma sintering (SPS), leveraging the high-temperature phase transformation of cubic boron nitride (cBN) to introduce randomly oriented hBN as a reinforcing phase within the SiO2 matrix. The randomly oriented hBN nanoplates allow cracks to propagate along stronger grain boundaries, rather than along weaker interlayers of hBN, significantly improving the overall strength and fracture toughness of the composite. The maximum flexural strength and fracture toughness achieved are 183.4 MPa and 2.06 MPa m1/2 respectively, which are 3.6 times and 4 times that of fused SiO2. Concurrently, the composites exhibit low dielectric constants (ε = 3.58–3.69) and dielectric losses (tan δ < 0.0087) at 1 MHz. This work successfully enhanced the mechanical performance of fused SiO2 while preserving its excellent dielectric characteristics, opening new possibilities for its potential applications in advanced structural and functional fields.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3649-0
Injectable hydrogels formed via dynamic chemical crosslinks hold great promise as drug delivery platforms due to their robust yet adaptable nature, stimuli-responsiveness, and tunable structures and properties. However, their inherently high water content poses a significant challenge for the efficient encapsulation and sustained release of hydrophobic drugs. Here, we present a novel injectable hydrogel system constructed via a strain-promoted disulfide-thiol exchange between dithiolane-functionalized polymer strands and thiolated core-shell nanoparticles (NPs) under physiological conditions. The hydrophobic core and hydrophilic shell structure of the NPs enables effective loading and protection of hydrophobic drugs, while rapid gelation occurs upon mixing the thiolated NPs with dithiolane-polymers in phosphate-buffered saline. The hydrogel shows excellent injectability, self-healing capability, in vitro biodegradability, and cytocompatibility. This hydrogel system enables sustained release of hydrophobic drugs over 32 days in aqueous media and supports sequential dual-drug release. Its redox-responsiveness under tumor-mimicking reducing conditions, enabled by the disulfide crosslinks, further facilitates controlled intracellular drug release. This multi-component platform offers a versatile strategy for designing advanced injectable hydrogels with potential applications in hydrophobic drug delivery and other biomedical fields.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3789-x
Wearable sensors have attracted significant attention due to their superior sensitivity, safety, and adaptability compared with conventional detection technologies. However, developing sustainable sensing materials that combine excellent performance with environmental friendliness remains a significant challenge. In this study, Juncus effusus (JE), a natural fiber featuring a unique internal three-dimensional (3D) network structure, was employed as the substrate. Conductive polyaniline was loaded onto the JE structure to impart electrical conductivity, and Ecoflex encapsulation provided high elasticity. Based on this approach, a JE-based resistive flexible sensor (PHE-JE) was successfully fabricated. The PHE-JE sensor exhibits high stability under various strain conditions, along with excellent flexibility and durability. Moreover, benefiting from its complex 3D structure and synergistic material interactions, the PHE-JE sensor enables accurate detection of diverse motion types, showing promising potential for future wearable sensing applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3860-0
Drug detection is critical for public health and security, yet reversible and highly sensitive sensing materials remain scarce. This study presents a novel ionogel sensor material, poly(ethylene glycol) diacrylate (PEGDA)/1-butyl-3-methylimidazole tetrafluoroborate, for reproducible detection of N-methylphenylethylamine (MPEA), a structural analogue of methamphetamine. The ionogel is fabricated by immobilizing a flowable ionic liquid within a PEGDA network via UV curing, preserving ionic mobility for efficient conduction. Integrated on a flexible poly(ethylene naphthalate) substrate, the sensor exhibits over 72.6% transmittance in the visible spectrum, enabling concealed attachment. Utilizing non-covalent interactions, the sensor achieves reproducible MPEA detection at sub-ppb levels at room temperature, with a theoretical detection limit of 317 ppt. It demonstrates high selectivity and consistency. Ionic conductivity was confirmed via current-voltage tests and impedance spectroscopy, and the sensing mechanism was clarified. The device maintains reliable performance under bending, indicating suitability for dynamic environments. With Bluetooth integration for wireless data transmission, the sensor shows strong potential for practical, discreet drug monitoring in real-world applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3705-5
Biodegradable metals (BMs) are designed to corrode gradually in physiological environments, yet this corrosion can compromise their mechanical integrity, potentially causing premature implant failure. For emerging zinc-based alloys, the corrosion-mechanical property relationship remains inadequately characterized. This study systematically investigated the long-term corrosion-associated mechanical behavior of hot-extruded Zn-Cu and Zn-Cu-Fe alloys, promising Zn-based bio-metals, in comparison with pure Zn, under immersion degradation in Hank's solution. Electrochemical impedance spectroscopy and mechanical testing revealed that the evolving corrosion profile governs mechanical performance. Alloying with Cu and Fe mitigated corrosion's detrimental effects: grain refinement reduced localized corrosion susceptibility, while finely dispersed second phases acted as cathodic sites, promoting uniform corrosion. Additionally, Cu and Fe facilitated the formation of protective corrosion product layers, suppressing further matrix attack. Consequently, the overall reduced corrosion, particularly localized corrosion, lowered stress concentration susceptibility, delaying mechanical decline and preserving structural integrity. These findings elucidate the degradation-mechanical property correlation in Zn-based bio-metals and underscore critical considerations for developing new bio-metals for clinical translation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3679-8
Idiopathic pulmonary fibrosis (IPF) is a chronic interstitial lung disease with high mortality and limited therapeutic options. Dysregulated macrophage polarization drives fibroblast activation and epithelial-mesenchymal transition (EMT), yet no effective management exists. Here, we develop an inhalable methane nanocapsule (MNC) that spatiotemporally controls methane release in the lung to remodel the fibrogenic microenvironment. MNC is formulated via self-assembly of biodegradable poly(lactic-co-glycolic acid)-polyethylene glycol (PLGA-PEG) and a novel acid-responsive methane prodrug Fe(BPY)2(CH3)2, enhancing mucosal penetration and sustained methane release in acidic inflammatory niches. In a bleomycin (BLM)-induced pulmonary fibrosis model, MNC inhalation achieves efficient lung deposition and sustained methane release, significantly reducing inflammation, ameliorating fibrosis, and improving lung function without systemic side effects. Mechanistically, MNC rebalances macrophage polarization by inhibiting M2 phenotype overexpression and downregulates the MMP9/TIMP-1 ratio to suppress myofibroblast proliferation and EMT, synergistically halting fibrotic progression. This inhalable methane nanocapsule offers a promising strategy for safe and effective IPF treatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3669-1
Halide perovskite light-emitting diodes (PeLEDs) have advanced rapidly due to their high photoluminescence quantum yield, tunable bandgap, and color purity. However, conventional perovskites exhibit small exciton binding energies, which weaken radiative recombination and limit external quantum efficiency (EQE). Strong spatial confinement strategies, such as thin films, small grains, or quantum-confined structures, have boosted EQE beyond 20% but introduce Auger recombination and ion migration, causing efficiency roll-off and instability. This commentary highlights a novel approach by Xiao et al. (Nature, 2025) that employs weakly space-confined all-inorganic CsPbBr3 perovskites, synthesized using sacrificial additives hypophosphorous acid (HPA) and ammonium chloride (NH4Cl). This method yields highly oriented monocrystalline domains exceeding hundreds of nanometers with no observable grain boundaries, contrasting with control films (submicrometre grains with abundant boundaries) and strongly confined systems (~20 nm crystallites with organic ligands). The reduced grain boundaries lower defect density and block ion migration, while controlled crystallization suppresses vacancies and lattice distortions, enhancing carrier mobility and raising the ion migration energy barrier. The strategy achieves record-breaking performance and stability, addressing EQE roll-off and operational lifetime limitations. This approach offers a versatile framework for other all-inorganic perovskite systems, advancing PeLEDs toward practical high-brightness displays and lighting.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3764-5
Rechargeable lithium-ion batteries (LIBs) are ubiquitous in portable electronics and electric vehicles, yet their flammable liquid electrolytes pose safety hazards and limit energy density. All-solid-state batteries (ASSBs) with solid-state electrolytes (SSEs) offer enhanced safety and higher energy density. Among SSEs, metal chloride SSEs (Li aMCl b, M = In, Y, Er) combine high ionic conductivity, mechanical deformability, and compatibility with high-voltage cathodes. However, their ionic conductivity and anode stability require improvement. Here, we introduce pentavalent Ta5+ doping into Li3InCl6 (LIC) to engineer Li+ vacancies via charge compensation, yielding Li3−2xIn1−xTaxCl6 (LITxC, 0 ≤ x ≤ 0.6). Ta5+ incorporation efficiently increases Li+ vacancy content without disrupting the cubic close packing (ccp) structure. The optimized composition, Li2.4In0.7Ta0.3Cl6 (LIT0.3C), achieves an ionic conductivity of 2.19 mS cm−1 at 30 °C and a low activation energy of 0.273 eV, balancing vacancy concentration and Li+ content. Ta5+ doping also enhances kinetic stability against the anode. ASSBs with LIT0.3C demonstrate excellent cycling stability: Ni90 cathodes retain 72.3% capacity after 1000 cycles at 0.5 C, while NCM523 cathodes retain 84.1% after 500 cycles at 0.2 C and 80.7% after 1000 cycles. These results highlight a practical strategy for improving chloride SSE performance, offering new insights for high-performance ASSB design.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(25)61036-5
Large graphene oxide (LGO) sheets offer significant advantages over smaller ones in various applications, yet their production via Hummers-type oxidation of large natural graphite flakes remains challenging due to difficulties in achieving full oxidation and avoiding fragmentation. This study provides the first direct evidence that large graphite flakes (up to 1 mm) can be completely oxidized without fragmentation under static conditions, as revealed by in-situ monitoring. The oxidation process is governed by diffusion of the oxidizer between layers, described by Fick's law, where a high oxidizer concentration gradient increases the diffusion rate. By minimizing the amount of concentrated H2SO4 solvent, we achieved a semi-solid state that elevates oxidizer concentration, facilitating Mn(VII) diffusion and enabling complete oxidation of gram-scale large flakes with significantly reduced reagent consumption. Reaction temperature was optimized to balance graphite oxidation and Mn(VII) self-decomposition. Using this approach, 200-, 100-, and 50-mesh natural graphite were fully oxidized with reduced H2SO4 and KMnO4 usage. After exfoliation, LGO with average lateral sizes of 27.3, 58.7, and 116.2 μm were obtained, respectively, with 100% conversion and yield over 165%. This work not only provides a scalable, cost-effective strategy for LGO production but also advances the fundamental understanding of Hummers-type oxidation.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61067-0
The reduction of 4-nitrophenol (4-NP) to 4-aminophenol (4-AP) in wastewater faces challenges in conversion rate and stability. We used coal tar pitch-based activated carbon fibers (ACFs) as a support material for loading transition metal catalysts to catalyze the reaction. Fe–Ni nanoparticles were loaded onto the coal tar pitch-based ACF through a simple hydrothermal–calcination method. The results showed that the coal tar pitch-based ACFs had a high specific surface area (1847 m2/g) and a unique microporous structure, and the metals were loaded onto them. The average diameter of the nanoparticles formed was approximately 100 nm. By changing the metal loading it was shown that the performance was best when the reaction temperature was 45 °C, the 4-NP concentration was 2.5 mmol L−1, and the molar concentration ratio of Fe3+ to Ni2+ was 1∶2 (total 7.5 mmol L−1). Under these conditions the conversion efficiency reached 99.88%. Fe2.5/Ni5–ACF exhibited excellent catalytic activity and recyclability for 4-NP after five cycles. The inherent advantages of nanomaterials increase the catalytic efficiency of 4-NP, which expands the use of coal tar pitch-based ACFs as supporting materials in the field of catalysis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3757-2
β-Ga2O3 is a promising candidate for solar-blind ultraviolet photodetection owing to its suitable bandgap of approximately 4.9 eV, excellent photoresponse characteristics, and high stability. However, the lack of a sufficient driving force within the material leads to extensive bulk charge recombination, limiting its photocurrent and thus posing significant challenges in designing high-performance Ga2O3-based photodetection. In this study, we propose a gradient doping strategy to achieve a Sn-doping concentration gradient along the β-Ga2O3 film thickness. By combining sol–gel synthesis with rapid thermal annealing, a spatially graded band structure with a full-space built-in electric field is constructed, which increases the width of band bending over a large region and is crucial for significantly enhancing carrier separation and transport in the bulk. The resulting gradient Sn-doped β-Ga2O3 enables exceptional photoelectric performance without an external bias under 254 nm irradiation, including a superior responsivity of 66.88 mA W−1, a high detectivity of 8.12 × 10^11 Jones, and a fast rise/decay time of 79/65 ms, outstanding most existing similar reported photoelectrochemical (PEC) type optoelectronic devices. Additionally, the device exhibits excellent long-term stability and enables high-resolution underwater ultraviolet imaging. This study demonstrates that the gradient doping strategy provides a feasible approach for enhancing the PEC performance of β-Ga2O3 photoelectrodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3708-y
Polar two-dimensional (2D) perovskites, with their excellent semiconductor properties, intrinsic anisotropy, and bulk photovoltaic effect, have emerged as promising candidates for self-driven polarization-sensitive photodetectors. However, these self-driven polarized detectors typically require fabrication along the spontaneous polarization direction to maintain device operation in the self-driven mode, which imposes additional limitations. Herein, we demonstrate multidirectional self-driven polarization-sensitive photodetection by constructing 2D perovskite-based asymmetric contact devices, Ag/2D perovskite/C. The built-in electric field, originating from the difference in work functions, acts as the driving force for the separation and transport of photogenerated carriers. Notably, this approach does not necessitate a specific direction, thereby enabling multidirectional self-driven photodetection. Under excitation by linearly polarized light, our devices exhibit impressive polarization-sensitive discrimination in multiple directions, achieving polarization ratios of 3.3 and 3.1 along the a and b-axes, respectively. Our work enriches the approaches enabling self-driven polarization-sensitive photodetection, free from the previous limitations.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3697-8
Multi-site coupling is a promising strategy for developing highly efficient and CO-resistant hydrogen oxidation reaction (HOR) catalysts for proton exchange membrane fuel cells (PEMFCs). However, designing multifunctional synergistic schemes for single-atom sites remains a significant challenge. Herein, we propose a dual-template-confined oxophilic engineering strategy to construct well-dispersed iridium-nickel (IrNi) atomic dimers adjacent to IrNi nanoclusters on porous nitrogen-doped carbon (IrNi Dimer/NC1.8-PNC). The paired IrNi dimer features an asymmetric Ir-N3 configuration coordinated with heteroatomic Ni-N3O via an N-bridge. Remarkably, IrNi Dimer/NC1.8-PNC exhibits a ~23-fold enhancement in mass activity (4.36 A mg−1 Ir at 20 mV) and 5-fold longer stability compared to benchmarking Pt/C toward HOR, while achieving a high rated power density of 1.18 W cm−2 in PEMFC anode applications. Furthermore, IrNi Dimer/NC1.8-PNC demonstrates superior CO tolerance over monometallic Ir and Pt/C in both half-cell and full-cell devices. Combined experimental and density functional theory studies reveal that oxophilic Ni modulates the electronic environment of Ir through alloying and dimer interactions, thereby enhancing HOR activity. Importantly, the asymmetric IrNi dimer enables efficient CO* and OH* co-adsorption while facilitating CO2* desorption, synergistically mitigating CO poisoning and improving atom utilization efficiency. This work provides a design strategy and fundamental insights for multi-site synergistic catalysts in PEMFC anodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3710-y
Layered transition metal oxide cathodes for sodium-ion batteries (SIBs) suffer from Jahn–Teller distortion of MnO6, Na+/vacancy ordering, and irreversible lattice oxygen loss, causing capacity fading and voltage decay. Here, we report a P2-type material, Na0.67Ni0.3Mn0.6Li0.09Sn0.01O2 (NNMO-Li0.09Sn0.01), co-doped with closed-shell Li+ and Sn4+ ions. Li+ increases the Mn4+/Mn3+ ratio, mitigating Jahn–Teller distortion, and disrupts Ni/Mn ordering, suppressing Na+/vacancy ordering. Sn4+ forms stronger Sn–O bonds (548 kJ mol−1), enhancing bonding between transition metal ions and oxygen, reducing oxygen loss. NNMO-Li0.09Sn0.01 delivers a specific capacity of 90.3 mAh g−1 with 62.9% capacity retention after 50 cycles at 0.1 C (1 C = 200 mA g−1), and 90.3% voltage retention. This closed-shell substitution strategy offers a viable approach for enhancing structural stability of wide-voltage layered oxide cathodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3693-0
The development of catalysts with highly efficient oxygen evolution performance and low-Ir loading is key to scaling up the application of proton exchange membrane (PEM) water electrolysis technology. Here, an Ir-skin catalyst (Ir@KM) is realized on a potassium-manganese oxide (K0.25MnOx (KM)) using an ion-exchange method. The Ir-skin over the prepared Ir@KM has a low Ir–Ir atomic distance, endowing an energetically favorable oxide path mechanism to allow a low theoretical overpotential of 0.13 V. Ir@KM offers a low overpotential of ~280 mV at a current density of 10 mA cm−2 and provides a high mass activity of up to 18,500 A gIr−1 at a cell voltage of 1.8 V in PEM, which is 17.6 times higher than that of IrO2, demonstrating a significant advantage in reducing the cost of the membrane electrode. The presented Ir-skin concept represents a promising strategy to fabricate low-Ir catalyst with high activity and durability for practical applications of PEM.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3702-0
Construction of metal-mediated redox sites is an appealing approach to enhance photocatalytic CO2 reduction coupled with H2O oxidation. However, conventional static redox sites generally lack spatiotemporal matching during reaction processes due to the constraints of rigid structure and the linear scaling relationship of adsorbed species. Herein, an alkanolamine-Ir synergistic system was developed, where flexible monoethanolamine (MEA) molecules function as molecular ferries to selectively adsorb CO2 via carbamate formation, while adjacent Ir nanoparticles (NPs) serve as H spillover hubs that relay protons, creating spatiotemporal adaptability that synchronizes CO2 reduction and water oxidation. In addition, time-resolved in situ spectroscopy directly captures the rapid transformation of carbamate intermediates concurrent with sustained IrOOH intermediates formation. Microkinetic modeling further demonstrates that the MEA-Ir modified system (M-Ir/ACN) creates interconnected H spillover networks between Ir NPs and MEA, facilitating efficient proton transport that drives *COOH formation with a favorable thermodynamic energy. As a result, the M-Ir/ACN achieves a 20-fold increase in CO production compared to the pristine sample while maintaining high stability throughout 45 h of continuous operation. This study presents that flexible molecular ferries boost CO2 adsorption, and deciphers how flexible molecular-metal synergy directs the trafficking of CO2-derived intermediates toward highly efficient CO2 photoreduction.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3788-9
Fabrication of large-area perovskite solar modules under ambient air conditions remains a critical challenge due to air sensitivity of perovskite intermediate phases during crystallization. Here, we introduce 2-iodoimidazole (IIZ) into the perovskite precursor, enabling the formation of an air-stable pure δ-phase intermediate, which, upon annealing, fully transforms into a highly oriented α-phase perovskite film with reduced defects and variability. Leveraging this approach, we achieve a stabilized power conversion efficiency of 20.9% for 927.5 cm2 perovskite solar modules with high reproducibility. The encapsulated modules meet stringent international photovoltaic testing standards (IEC61215:2021), demonstrating excellent stability under continuous operation, thermal cycling (−40 to 85 °C) and damp heat (85 °C and 85% relative humidity).
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3883-2
Tensile stress annealing (TSA) is an effective strategy for tailoring magnetic anisotropy and high-frequency performance in nanocrystalline soft magnetic alloys. Here, we systematically investigate the influence of TSA on the microstructure, magnetic domain evolution, and permeability stability of Fe69.5Co3Nb2Mo1.5Si14B9Cu1 nanocrystalline alloys. Across all applied stresses (0–300 MPa), the alloys retain an ultrafine grain size (≤11 nm), yet the induced uniaxial anisotropy constant (Ku) rises sharply from 22.5 to 665 J/m3. This increase in Ku refines the magnetic domain structure, reducing average domain width from 110 to 36 μm, and shifts the magnetization mechanism from domain-wall displacement to rotation-dominated reversal. Quantitative correlation between Ku, domain structure, and effective permeability (μe) reveals that higher stress suppresses μe at low frequencies but yields exceptional frequency stability: μe ≈ 2330 is maintained up to 1 MHz at 50 MPa, and μe ≈ 585 remains constant from 1 kHz to 10 MHz at 300 MPa. These findings demonstrate that stress-induced anisotropy is a decisive factor in governing high-frequency magnetic response, offering both mechanistic insight and a practical framework for designing next-generation soft magnetic materials for precision current transformers, EMC filters, and MHz-class power electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3807-8
Electrocatalytic co-reduction of CO2 and nitrate offers a sustainable route for urea synthesis, valorizing nitrogenous waste and CO2. However, achieving high-performance urea electrosynthesis under ambient conditions remains challenging due to the need for simultaneous activation of CO2 and efficient H2O dissociation to supply active *H for *NOx hydrogenation, ultimately forming key C- and N-containing intermediates for C–N coupling. Here, we report a bifunctional Pd-single-atom-modified Cu (Pd1Cu) nanorod catalyst that synergistically promotes adsorption and stepwise activation of CO2 and H2O, steering the reaction pathway toward selective urea synthesis. Integrating experimental evidence, in situ spectroscopy, and computational analyses, we disclose that atomically dispersed Pd sites kinetically favor co-generation of *CO and *NH2 via H2O dissociation-driven proton transfer, forming an optimal intermediate balance. The dual metal active sites enhance C–N coupling via combined electronic and geometric effects, substantially lowering the reaction energy barrier and improving selectivity. This work provides a rational design strategy for advanced multifunctional catalysts for urea electrosynthesis, contributing to carbon neutrality and waste nitrogen valorization.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3805-1
The sluggish kinetics of oxygen reduction and evolution reactions (ORR/OER) at the air electrode impede the practical deployment of fiber zinc-air batteries (FZABs) for wearable electronics. Conventional bifunctional catalysts suffer from an inherent activity trade-off due to the distinct mechanisms of ORR and OER. Here, we propose a spatial decoupling strategy to overcome this limitation by engineering isolated Fe single atoms and Fe–Ir dual-atom pairs on a nitrogen-doped carbon matrix (Fe/FeIr-NC). In this architecture, Fe single atoms serve as ORR centers, while Fe–Ir pairs with tunable spacing are tailored for OER, enabling complete functional separation and independent optimization. The catalyst exhibits an ORR half-wave potential of 0.91 V and an OER overpotential of 250 mV at 10 mA cm−2, yielding a record-low bifunctional gap (ΔE = 0.57 V) that outperforms all reported single- and dual-atom catalysts. A flexible fiber zinc-air battery based on this catalyst delivers a peak power density of 3920 W kg−1, along with a 1.4-fold increase in energy efficiency and a 2.6-fold extension in cycle life compared to the commercial Pt/C + IrO2 benchmark. This work not only breaks the traditional activity trade-off in bifunctional catalysis but also offers a promising route toward high-performance power sources for wearable electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3815-0
The development of bifunctional electrocatalysts capable of integrating biomass-derived platform molecule oxidation with organic reduction offers a promising strategy for simultaneously enhancing energy efficiency and generating high-value chemicals. However, designing catalysts that exhibit both high activity and stability in integrated systems remains a significant challenge. Herein, we report a self-supported electrode composed of nitrogen-doped carbonized wood (NCW) supported NiCo nanosheets (NiCo 0.3/NCW) that enables the electrocatalytic 5-hydroxymethylfurfural oxidation to produce 2,5-furandicarboxylic acid (FDCA) and the nitrobenzene reduction to yield aniline in an integrated electrochemical cell. The NiCo 0.3/NCW electrode achieves the production of FDCA and aniline at a low cell voltage of 1.7 V, with ~99% anodic and ~92% cathodic Faradaic efficiencies, respectively. Experimental characterizations disclose that the hierarchical porous NCW architecture promotes the dispersion of active sites, while nitrogen doping strengthens metal–support interactions. In-situ spectroscopic experiments combined with density functional theory (DFT) calculations reveal that cobalt incorporation tunes the electronic structure of nickel, thus optimizing substrate and intermediate adsorption, and lowering energy barriers. These effects ultimately enhance the performance of the natural wood-derived catalyst in integrated biomass valorization and selective organic electrosynthesis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3681-6
Brominated butyl rubber (BIIR) is widely used in tires and biomedical products due to its excellent elasticity and gas barrier properties, but recycling end-of-life BIIR remains challenging because of its covalent cross-linked network. Here, we report a direct upcycling strategy for unmodified waste BIIR via nanoparticle-mediated interfacial crosslinking, avoiding chemical modification or degradation of the polymer structure. Pyridyl-functionalized silica nanoparticles (SiO2-Py) were synthesized and used to crosslink bromine atoms in waste BIIR with those of fresh BIIR, reconstructing the crosslink network without altering the original sulfur-vulcanization network. The resulting composites exhibit a dual interpenetrating network comprising the sulfur-vulcanized network and a bromine-pyridinium crosslinked silica-rich network, providing exceptional strength and toughness. Using discarded bicycle inner tubes as waste BIIR source, the upcycled composites achieved a tensile strength of ~14 MPa, toughness of ~60 MJ m−3, and ultra-low air permeability of 8.78×10−15 cm3 cm/(cm2 s Pa), significantly outperforming the original inner tube material. This work presents a scalable and effective solution for BIIR waste recycling, advancing sustainable development in the rubber industry.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3838-5
Air-permeable and ultrathin conductive electrodes are essential for next-generation soft electronics, including breathable wearables, on-skin devices, and bio-integrated electronics. However, conventional metallization strategies, such as sputtering and ink-printing, often suffer from severe vertical charge leakage due to the porous and ultrathin characteristics of nanofibrous networks, leading to device short-circuiting, operational failure, and limited vertical integration. Here, we present a solvent-selective dissolution-assisted transfer printing strategy to achieve surface-confined metallization of ultrathin, lightweight, and gas-permeable nanofibrous networks, enabling lateral conductivity while maintaining vertical insulation. This transfer printing process facilitates not only the rapid formation of conductive patterns on the surface of nanofibrous networks but also mechanical reinforcement through solvent evaporation-induced interlocked fiber-fiber welding. Meanwhile, the strategy preserves the high permeability of the nanofibrous networks and imparts a unique combination of surface conductivity (2 Ω cm) and vertical insulativity (10^11 Ω cm). The resulting anisotropic conductive networks enable low-voltage wearable heaters, high-sensitive pressure sensors, and ultralight temperature sensors. A pressure-temperature dual-modal sensing patch is further fabricated for intelligent grasping classification. The proposed surface-confined metallization strategy enables rapid fabrication of an anisotropic conductive network as a building block to construct air-permeable, ultrathin, and lightweight wearable electronics.