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/s40843-026-4425-4
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/s40843-026-4293-9
Traditional soft magnetic alloys (SMAs) suffer from a performance trade-off where enhancing magnetic properties often compromises mechanical and other properties, limiting their use in high-efficiency power systems and advanced electronics. The design concept of medium- and high-entropy alloys (M/HEAs) offers a pathway to overcome this limitation. By leveraging multi-principal-element compositions and tailorable microstructures, medium- and high-entropy soft magnetic alloys (M/HE-SMAs) can integrate superior soft magnetic properties with exceptional mechanical strength-ductility synergy, high electrical resistivity, good thermal stability, and excellent corrosion resistance. This article reviews design strategies for synergistic enhancement of multiple properties in M/HE-SMAs, including blending multiple ferromagnetic and non-ferromagnetic elements into solid solution, inducing local chemical order, tailoring nanoprecipitates, controlling grain size, and engineering dual/multi-phase structures. The cooperative interactions among these strategies are discussed. Potential research directions for further development and practical applications are proposed.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3691-9
Near-infrared (NIR) spectroscopy has significantly advanced NIR light sources, yet creating NIR emitters with optimal luminescence properties, high thermal stability, and adjustable emission peaks remains a critical challenge for future smart NIR devices. Here, we introduce a chemical unit cosubstitution strategy by incorporating Ca2+ and Sn4+ ions into the garnet structure. Through this approach, Y3−yCayGa4.95−ySnyO12:0.05Cr3+ (y = 0–1) phosphors were developed by modulating the A&C ligands, resulting in emission centers ranging from 708 to 768 nm. The modified local environment of Cr3+ accounts for the increased light intensity (2.71 times) and broadening observed. Furthermore, this study investigated the impact of varying Cr3+ concentrations (Y2.6Ca0.4Ga4.6−xSn0.4O12:xCr3+) on the production of high-performance phosphors. Compared with Y3Ga4.93O12:0.07Cr3+, the optimized phosphor exhibited exceptional external quantum efficiency (EQE = 34.96%). The luminescence enhancement is attributed to an increase in radiative transitions caused by octahedral Jahn-Teller distortion, whereas the notable thermal stability (91.3% at 423 K) is attributed to the presence of weak electron-phonon coupling (EPC) and oxygen vacancy (OV) defects. Finally, by combining it with a 450 nm blue LED chip, we constructed a near-infrared phosphor-converted LED (NIR pc-LED) device with superior electroluminescence efficiency (18.8% @ 100 mA), increasing the ultralow quenching rate (< 5% intensity loss after 30 days of operation) and demonstrating remarkable performance in plant lighting applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3582-9
Perovskite quantum dots (PQDs) hold great potential for brain-like neuromorphic computing. However, the development of PQDs-based synaptic devices is hindered by interfacial defects and limited stability. Here, we demonstrate a high-performance Cs2AgBiBr6 QDs/organic single crystal heterojunction synaptic device, fabricated via a novel space-confined vertical growth technique combined with a polymer-free transfer process. Vertically grown organic single crystals enable superior carrier mobility and facilitate the formation of low-defect interfaces with PQDs. The heterojunction exhibits remarkable photosensitivity (7.22 × 10^5 at 425 nm) and detectivity (2.15 × 10^15 Jones), owing to the strong optical absorption of PQDs coupled with the superior charge transport characteristics of organic single crystals. Notably, the device achieves dual-functional light adaptation, emulating synaptic behaviour under blue light while exhibiting photo-switching under green/red light. This unique capability enables smart blue-light hazard protection. This work not only provides a versatile platform for high-performance PQDs-based synaptic devices but also advances the development of brain-inspired neuromorphic systems for next-generation computing and intelligent sensing.
SCIENCE CHINA 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/s40843-025-3669-1
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.
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.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025073004
Micro/nano-plastics (MNPs) are emerging contaminants widely detected in human circulatory systems, including blood, heart, and vascular endothelium, raising concerns about cardiovascular health risks. This systematic review analyzed 61 peer-reviewed studies (2008–2024) to elucidate the cardiotoxic effects and molecular mechanisms of MNPs. Evidence indicates that MNPs exposure elevates risks of atherosclerosis, thrombosis, and arrhythmias through oxidative stress, inflammatory cascades, endothelial dysfunction, and metabolic dysregulation. Notably, co-exposure with persistent organic pollutants (POPs) or heavy metals may produce synergistic or antagonistic effects. Current research relies predominantly on animal and cell models, with critical gaps in low-dose, long-term exposure data and epidemiological evidence. Future studies should optimize experimental designs, integrate metabolomics and epigenetics, and explore transgenerational effects and combined toxicity mechanisms to inform pollution control policies and mitigate cardiovascular risks.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61097-9
Silicon/carbon (Si/C) composites are promising anode materials for high-energy-density lithium-ion batteries (LIBs) because they mitigate the severe volume expansion and poor electrical conductivity of pure silicon anodes. This review systematically summarizes the state-of-the-art preparation methods for Si/C composites, including ball milling, spray drying, electrostatic spinning, and chemical vapor deposition (CVD). Structural engineering strategies, such as carbon precursor coating, silicon-precursor-based wet chemistry, and silicon surface modification, are critically assessed for their effectiveness in enhancing electrical conductivity, buffering volume changes, and improving overall electrochemical performance. The review highlights that while Si offers a theoretical capacity of 4200 mAh g−1, far exceeding graphite's 372 mAh g−1, its practical application is hindered by capacity fading and low initial coulombic efficiency. The integration of carbon matrices not only provides mechanical flexibility but also facilitates electron transport. Key performance metrics from recent studies, including specific capacities exceeding 1000 mAh g−1 and improved cycling stability over hundreds of cycles, are discussed. The review also addresses the challenges of scalable production and cost-effectiveness, emphasizing the need for optimized precursor selection and processing parameters. Future research directions are proposed, focusing on the rational design of hierarchical structures and the development of novel binders to further enhance the long-term durability of Si/C anodes. This comprehensive overview serves as a valuable resource for researchers and engineers aiming to advance the commercialization of high-energy-density LIBs.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605001
The lower reaches of the Yangtze River Basin, as a concentrated area of China's C5 petroleum resin industry, face critical bottlenecks in green and low-carbon transformation due to high-pollution, refractory wastewater and high carbon emissions. Traditional petrochemical wastewater treatment technologies suffer from low efficiency, high energy consumption, and insufficient resource utilization. This paper systematically analyzes the sources of wastewater in C5 petroleum resin production from principles and processes, and reviews research progress and carbon reduction potential of current technologies in three aspects: new materials, new equipment, and new processes. Integrated processes centered on efficient pretreatment, biological enhancement, and multi-technology coupling show significant advantages in improving treatment efficiency, reducing energy consumption and cost, and strengthening resource recovery. The study also prospects future research priorities for pollution and carbon mitigation through green technological innovation and intelligent upgrading, providing new solutions for 'near-zero discharge' and resource recycling of C5 petroleum resin wastewater, thereby promoting the green and low-carbon transformation of the petrochemical industry.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3786-8
Conventional cancer diagnostic techniques, such as tissue sampling and microscopy, are invasive and prone to misdiagnosis, driving the need for non-invasive, precise alternatives. Chiral biophotonics, exploiting circularly polarized light (CPL), offers unique polarization-selective interactions with biological tissues, enabling higher imaging contrast and molecular-level discrimination. However, current CPL detection technologies are passive and single-mode, lacking dynamic tunability and parallel processing capabilities. Meanwhile, AI-assisted diagnostics rely on separated sensing and computing units, suffering from poor integration and transmission inefficiency. Here, we report a near-infrared (NIR) chiral organic synaptic photodiode with electrically tunable dual-mode operation, enabling simultaneous CPL detection and neuromorphic processing. Under negative bias, the device operates as a highly sensitive CPL detector for chiroptical signal acquisition. Under positive bias, it exhibits history-dependent synaptic behavior with photocurrent dissymmetry factor (g_ph) dynamically tunable up to -0.06. By integrating this device into an optical convolutional neural network (OCNN), we achieved intelligent cancer detection with CPL-based imaging. Experimental results demonstrate that CPL detection accuracy reaches 83%, approaching the theoretical 87%, significantly outperforming natural light detection at 65%. The device enhances image contrast and feature extraction, laying a foundation for intelligent, adaptive diagnostic systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3863-x
Lead-free double perovskites are promising for optoelectronic applications due to their tunable optical properties, stability, and non-toxicity. However, achieving efficient ultrabroadband near-infrared (NIR) emission and X-ray radioluminescence (RL) simultaneously remains challenging. Here, we report a Mo4+-doped Cs2(Na0.4Ag0.6)InCl6 double perovskite that exhibits efficient blue-light-excitable NIR emission with a near-unity photoluminescence quantum yield. The emitter demonstrates robust thermal stability, retaining 84% of its initial emission intensity at 420 K relative to 300 K. Under X-ray irradiation, the material shows bright NIR RL with a high light yield of 39,400 ± 1100 photons/MeV. A flexible film of Mo4+-doped Cs2(Na0.4Ag0.6)InCl6/polydimethylsiloxane (PDMS) was fabricated and applied as an NIR light source and X-ray scintillator. A dual-functional platform for cooperative NIR and X-ray imaging was established using a bullfrog palm as the target, achieving pixel-level fusion of NIR and X-ray images without spatial mismatch or complex image processing. The fused image simultaneously visualizes blood vessels and skeleton textures under the skin tissue. This work provides a viable strategy for lead-free double perovskites in advanced optoelectronic devices, particularly for multispectral imaging.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3890-6
Photothermal catalysis offers a sustainable route for CO2 conversion to value-added chemicals, yet precise control of active sites and light-harvesting materials remains challenging. Here, we report the rational integration of three-dimensional ordered macroporous (3DOM) CeO2 with positively charged (Niδ+)n clusters to construct efficient photothermal catalysts for the reverse water gas shift (RWGS) reaction. The 3DOM architecture enhances light absorption, improves access to active sites, and provides a confined environment for reactant enrichment. Engineering (Niδ+)n clusters within 3DOM CeO2 not only affords highly active sites for H2 adsorption and dissociation but also modulates the local structure of CeO2 to promote CO2 adsorption and activation. Furthermore, the (Niδ+)n clusters significantly enhance light-harvesting capability across the UV-vis-NIR spectrum, generating a pronounced photothermal effect that accelerates reaction kinetics. The optimized (Niδ+)n/CeO2 catalyst exhibits outstanding photothermal catalytic performance, achieving a CO production rate of 63.36 mmol g−1 h−1 in a flowing reaction with CO selectivity of 93% under simulated solar irradiation (2.6 W cm−2). Theoretical calculations reveal that the (Niδ+)n/CeO2 catalyst reduces the thermodynamic energy barrier for *COOH formation in CO2 hydrogenation. This study offers valuable insights into the design of photothermal catalysts, highlighting the significant potential of active-site engineering in promoting efficient CO2 conversion for practical solar-to-fuel production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3943-y
Biodegradable polymers are promising for bioelectronic materials, yet simultaneously improving their mechanical, electrical, and optical performance remains a major challenge. Poly(3-hydroxybutyrate-co-4-hydroxyvalerate) (P34HB), a microbially synthesized polyhydroxyalkanoate (PHA), exhibits excellent biocompatibility and degradability but suffers from poor chain length control, limiting its functional performance. Here, we report a low-temperature, non-destructive supercritical ethyl alcohol-assisted polymerization (SEAP) strategy to enhance P34HB at the molecular level. Operating at 40 °C and 1500 psi, SEAP combines the permeability of supercritical CO2 with ethanol-mediated catalysis to promote in situ dehydration polymerization and efficiently remove impurities. Post-treatment, P34HB exhibits a 16% increase in number-average molecular weight, along with a record-high Young's modulus of 51.08 GPa and a 144% increase in elongation at break, overcoming the conventional trade-off between stiffness and ductility. Optical performance is also improved, with transmittance rising by 44% and refractive index increasing to 1.2. Material analyses confirm a higher ester group density and reduction of residual impurities. Electrical insulation is notably enhanced, with leakage current reduced by 50% to below 1 pA and reduced dielectric loss to 0.06. Cytotoxicity assays further verify excellent biocompatibility. This work establishes SEAP as a sustainable strategy for functionalizing P34HB, enabling its deployment in next-generation bioelectronics and flexible electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4107-x
Aqueous fiber zinc-iodine batteries (FZIBs) with four-electron redox exhibit inherent safety and high energy density for wearable electronics. Nevertheless, their practical implementations are hindered by unsatisfactory cycling stability and low realistic energy density, mainly caused by severe H2O-induced nucleophilic attack toward iodine species and poor zinc anode reversibility. Here, we report a quaternary ammonium-mediated coordination strategy to simultaneously address the irreversible cathode/anode redox behavior and thus promote the electrochemical performance of four-electron FZIBs. The cationic choline ion (Ch+) induces complexation with ICl2− via electrostatic interaction, homogenizing the electron cloud density and suppressing irreversible hydrolysis of I+ species, enabling a reversible near-theoretical high capacity of 418.3 mAh g−1. Meanwhile, preferentially adsorbed Ch+ on the zinc anode surface creates positively charged shielding layers, mitigating the tip effect caused by localized electric field and achieving robust zinc stripping/plating. The enhanced cathode/anode reversibility and improved interfacial stability enable stable FZIBs operation for over 20,000 cycles at 20.0 A g−1. Moreover, successful integration of FZIBs into electronic textiles with glucose and cardiac rhythm sensors demonstrates great potential for next-generation wearable electronics.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510042
Given China's escalating municipal solid waste (MSW) generation and the limitations of current classification schemes, this study proposes a novel waste classification model centered on mid-end intelligent sorting technology. The approach integrates targeted pretreatment with multimodal visual recognition and robotic grasping to efficiently sort complex household waste, while compact equipment innovations adapt to the low-value characteristics of recyclables. An engineering demonstration case shows that the technology can effectively recover low-value recyclables comprising 15%–30% of mixed MSW. If applied at 5% of a case city's waste transfer stations, approximately 5×10^4 t of recyclables could be sorted annually. Preliminary estimates indicate a 20% return on investment for operators at an 80 t·d−1 scale. The study demonstrates that mid-end intelligent sorting offers a technically feasible and economically sustainable solution to reduce fiscal expenditure on waste classification while improving efficiency.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512059
Recovery of palladium from Pd-bearing wastewater is economically and environmentally significant. Adsorption is a promising method due to its simplicity, low cost, and high efficiency. In this study, a novel thiol-modified adsorbent (CHT-SH) was synthesized via one-step functionalization of inexpensive chitin (CHT) with thioglycolic acid. At room temperature and pH=2, CHT-SH exhibited an experimental adsorption capacity of 223.67 mg·g−1 for Pd(II), which was approximately 7 times higher than that of pristine CHT (30.6 mg·g−1). Kinetic and isotherm studies indicated that the adsorption process followed the pseudo-second-order kinetic model and the Langmuir isotherm model, with a maximum theoretical adsorption capacity of 248.89 mg·g−1, suggesting monolayer chemisorption. Characterization (FTIR, SEM, XPS, XRD) and density functional theory (DFT) calculations revealed that the adsorption mechanism primarily involved synergistic coordination of nitrogen and sulfur atoms, along with electrostatic interactions. Furthermore, CHT-SH demonstrated good reusability, retaining stable adsorption capacity after five adsorption-desorption cycles. Compared to other adsorbents that rely on redox mechanisms and are costly, CHT-SH offers comprehensive advantages. This work provides a cost-effective and efficient adsorbent for Pd(II) recovery from wastewater, offering technical support and theoretical reference for practical applications.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60656-1
Under the carbon neutrality strategy, biomass boilers have emerged as key facilities for renewable energy utilization, yet are characterized by low-concentration SO2 emissions. Ca-based dry desulfurization presents a promising technology for biomass boiler flue gas purification due to its compact structure, low capital investment and simple operation and maintenance. However, it is generally limited by the low adsorbent utilization and insufficient desulfurization efficiency. Herein, this study developed a novel Ca-Mn composite adsorbent through a synergistic strategy integrating F127 surfactant to optimize dispersion and Mn loading to enhance oxidation efficiency. The resulting adsorbent not only significantly increased the breakthrough sulfur capacity of the Ca-based material but also markedly improved the synergistic removal of Hg0. It was demonstrated that the introduction of Mn elements and F127 effectively suppressed the agglomeration of Ca(OH)2 crystallites and induced an oxygen vacancy-rich structure, while simultaneously optimizing the pore structure of the adsorbent. The modified adsorbent exhibited the enlarged specific surface area and pore volume, which favored to enhance the reaction mass transfer and effectively prevent the pore blockage and coverage of active sites by desulfurization products. The Mn sites and oxygen vacancies formed catalytic centers, which not only accelerated the desulfurization reaction by promoting SO2 oxidation but also enabled the adsorbent to couple with Hg0 catalytic oxidation functionality. Consequently, the simultaneous removal of SO2 and Hg0 was significantly enhanced on the Ca-Mn composite adsorbent.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3951-4
Silicon anodes offer an ultrahigh theoretical capacity (4200 mAh g−1) but suffer from >300% volumetric expansion during cycling and unstable solid electrolyte interphase (SEI) formation, leading to rapid capacity fading. Here, we design a hierarchical composite p-cSi@aSi@MgSiN2@C featuring a porous crystalline-amorphous silicon core (p-cSi@aSi), an in-situ MgSiN2 transition layer, and an outer nitrogen-doped carbon shell. The 3D interconnected pores accommodate volume expansion, while amorphous silicon enables isotropic lithiation-induced strain, eliminating crystalline phase transition barriers. The MgSiN2 layer transforms into a tough Li3N-rich SEI with ultra-fast ion channels, and the carbon shell provides mechanical confinement and electronic conductivity. This synergistic interface engineering achieves an initial coulombic efficiency (ICE) of 81.4%, a charge transfer resistance of 16.4 Ω after 200 cycles (64% reduction), and a Li+ diffusion coefficient of 1.72×10−11 cm2 s−1. The anode delivers 1719.3 mAh g−1 at 0.2 C after 200 cycles and 823.8 mAh g−1 at 0.5 C after 500 cycles. The molten salt electrolysis synthesis achieves a current efficiency of 68.12% and specific energy consumption of 12.76 kWh kg−1, with an estimated electricity cost of 1154.69 USD ton−1, only 20% of commercial Si/C anodes. This work resolves the ICE-cycle life trade-off and provides a scalable, cost-effective approach for next-generation high-energy batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4036-4
Alkaline water electrolysis is a pivotal technology for large-scale green hydrogen production, yet its efficiency is constrained by sluggish hydrogen evolution reaction (HER) kinetics at industrial current densities. Here, we propose a synergistic dual-doping strategy to lower kinetic barriers for both Volmer and Heyrovsky steps. A robust amorphous NiCoV nanosheet electrode was synthesized via scalable one-step electrodeposition. In situ spectroscopic and kinetic characterizations reveal that hydrophilic V species optimize interfacial water by disrupting the hydrogen bond network, ensuring rapid supply of free water at the inner Helmholtz plane. Co dopants modulate electronic structure to facilitate electron transfer and optimize intermediate adsorption energetics. The NiCoV electrode requires an ultralow overpotential of 253 mV at -400 mA cm−2, surpassing most Pt-based catalysts, and maintains stability for over 200 h. Industrial validation in a scaled-up electrolyzer demonstrates a cell voltage of 1.89 V at 400 mA cm−2, achieving energy savings of 0.12 kWh m−3 H2 compared to commercial benchmarks. This translates to annual electricity savings of 1.33 × 10^6 kWh for a medium-scale demonstration project, highlighting immense potential for sustainable industrial applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3974-1
MAB-phase-derived compounds exhibit promising electromagnetic wave (EMW) absorption properties due to their unique layered structure and desirable physicochemical characteristics. Among them, Cr2AlB2 is particularly attractive owing to its excellent thermal and electrical conductivity. However, conventional synthesis of Cr2AlB2 requires inert gas protection to prevent oxidation, significantly increasing production costs and limiting its application in EMW absorption. To overcome this bottleneck, we report the successful synthesis of high-purity Cr2AlB2 in ambient air using the molten salt shielded synthesis (MS3) method. This approach not only isolates the material from oxygen interference but also reduces the synthesis temperature, offering a cost-effective and scalable route. The as-synthesized Cr2AlB2 exhibits outstanding EMW absorption performance: a minimum reflection loss (RLmin) of -42.10 dB at 12.6 GHz and a maximum effective absorption bandwidth (EABmax) of 3.44 GHz at a thickness of 1.9 mm. This work not only facilitates the large-scale production of Cr2AlB2 but also provides critical insights into its practical application as a high-performance EMW absorber.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4058-4
Bacterial infection following endometrial injury delays tissue regeneration and may progress to endometritis and other reproductive disorders. Photodynamic therapy (PDT) offers a promising antibacterial strategy in the post-antibiotic era, yet its efficacy is often limited by rapid recombination of photogenerated charge carriers and poor penetration of visible excitation light. Here, we report a previously unexplored upconversion-mediated, Type I dominant photodynamic antibacterial uterine scaffold specifically designed for infection-associated endometrial injury. The core innovation is the construction of a Schottky Ag0-Ag2S heterojunction on NaYF4:Yb,Tm nanoparticles using ZIF-8 as a sacrificial precursor, enabling efficient charge separation and oxygen-independent hydroxyl radical generation, overcoming the oxygen dependence of conventional Type II PDT under hypoxic uterine conditions. The upconversion core permits deep-tissue-penetrable near-infrared (NIR) activation. Beyond instantaneous PDT, dynamic release of Ag+ ions provides synergistic bactericidal activity, enabling spatiotemporally coordinated biofilm disruption. These nanostructures were incorporated into patient-customizable, biodegradable poly(L-lactic acid) (PLLA) scaffolds fabricated by selective laser sintering, achieving simultaneous antibacterial therapy and endometrial regeneration in a single platform. This integration of an oxygen-independent PDT mechanism, MOF-templated heterojunction engineering, and 3D printed personalized uterine implants constitutes a comprehensive therapeutic strategy not previously reported for treating infection and endometrial injury.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4085-9
Bone defects remain a prevalent clinical challenge, and regenerative medicine based on bone tissue engineering offers promising solutions. Traditional osteogenic materials rely on bioactive macromolecules like growth factors, which suffer from poor stability and stringent storage requirements. From a structural perspective, bone tissue resides in a phosphorylated microenvironment, with 65–70% of inorganic components composed of hydroxyapatite. Inorganic phosphorylated materials induce osteogenic differentiation but exhibit high stiffness, brittleness, slow degradation, and limited mechanical tunability. Synthetic phosphorylated polymers with excellent mechanical properties and biocompatibility have been developed to address these issues. In this work, we developed a series of phosphorylated polymers derived from poly(glycerol sebacate) (PGS), a biocompatible and biodegradable material. Leveraging the hydroxyl-rich backbone of PGS, we demonstrated an efficient method for controllable phosphorylation of PGS side chains, enabling synthesis of PGS-based phosphorylated (PGS-P) polymers with tunable phosphorus contents. The optimized phosphorylated polyester, PGS-P4, exhibited strong ability to promote osteogenic differentiation of rat BMSCs, and its porous three-dimensional scaffolds showed favorable properties for bone regeneration. BMSCs cultured for one week and observed by fluorescence microscopy showed enhanced BSP protein expression on PGS-P2, PGS-P4, and PGS-P6 groups compared with PLGA and PGS, with PGS-P4 displaying the most intense signal. In summary, we present a simple and controllable method for preparation of functionalized polyesters and their porous scaffolds with tunable phosphorus content, validating its effectiveness in promoting osteogenic differentiation of rat BMSCs. All phosphorylated polyesters exhibit enhanced differentiation-promoting effects compared to non-phosphorylated PGS; however, the degree of enhancement does not increase monotonically with phosphorus content. PGS-P4, containing an optimal phosphorus level, shows the most pronounced biological functions.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60684-6
Tungsten trioxide (WO3) is a transition metal oxide of significant interest in heterogeneous catalysis due to its environmental friendliness, cost-effectiveness, and favorable electrical properties. The catalytic performance of WO3 is strongly dependent on its exposed crystal facets, which exhibit distinct physicochemical properties including charge separation efficiency, reactant adsorption capacity, and redox activity. These differences arise from variations in atomic arrangement, electronic structure, and surface energy. This review systematically examines the facet effect of WO3 across photocatalysis, electrocatalysis, photoelectrocatalysis, and thermal catalysis. Theoretical calculations are integrated to elucidate the intrinsic mechanisms underlying facet-dependent behavior from an atomic structure perspective. The paper synthesizes general rules governing the WO3 facet effect across these applications, critically assesses current research limitations, and outlines future directions. Key findings highlight that facet engineering enables precise tuning of catalytic activity and selectivity, with specific facets such as {001}, {110}, and {010} demonstrating enhanced performance in various reactions. The review underscores the importance of morphology control in optimizing WO3-based catalysts and identifies challenges in achieving facet-selective synthesis and stability under operational conditions. Future research should focus on advanced characterization techniques and computational modeling to further unravel facet-dependent mechanisms and guide rational catalyst design.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4074-6
Achieving carbon neutralization relies heavily on green hydrogen and electrochemical carbon-nitrogen cycles. However, the complexity of these systems and the cost of traditional Edisonian trial-and-error methods hinder rapid progress. Artificial intelligence (AI) has emerged as a transformative tool, enabling high-throughput data processing and dynamic adaptation. This review surveys the landscape of AI-driven electrochemistry, bridging the gap from atomic-scale design to industrial-scale implementation. Specifically, we focus on three areas: atomic structure-function decoding, fully automated “self-driving” laboratories, and macro-scale simulations for device durability. Furthermore, we elucidate the critical challenges in integrating AI with materials science. By mapping current trends and future directions, this work aims to unlock the full transformative potential of AI in next-generation energy storage and conversion.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4038-8
Fluorescent fibers and textiles that integrate outstanding optical performance with excellent flexibility hold significant promise for wearable applications and the Internet of Things (IoT). However, the poor stability of post-organized phosphor-based fibers and the high-cost, high-precision technology of electroluminescent fibers hinder their widespread adoption. Perovskite materials and organic semiconductors, owing to their high-efficiency, tunable luminescent properties and solution processability, are deliberately employed to fabricate desired fluorescent fibers and textiles via a spinning chemistry strategy. Recent advances have successfully applied these fibers to sensors, information displays, optical communications, and health monitoring. This review provides a comprehensive overview of recent progress in fluorescent fibers and textiles, covering spinning techniques, emitter design, and wearable applications. We highlight key challenges and future research directions in the fine design and synthesis of fluorescent fibers and textiles, as well as their system integration for practical wearable applications. The review emphasizes the potential of spinning chemistry to enable scalable production of robust, high-performance luminescent fibers, addressing stability and cost barriers. We discuss the use of metal halide perovskite quantum dots (PQDs) with high photoluminescence quantum yields (PLQY) and tunable emission, and organic semiconductor emitters with tailored molecular structures, as promising building blocks. The integration of these materials into fibers via spinning chemistry offers a facile, efficient, and controlled strategy, leading to ultra-stable CsPbX3 (X = Cl, Br, I) perovskite filaments with a PLQY of 24.5% and stretchability up to 2400%. The review concludes by outlining future research directions, including the development of lead-free perovskites and self-healing materials, to enhance stability and safety for commercial wearable technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4147-9
Fiber-shaped zinc-air batteries (FZABs) with aqueous electrolytes combine intrinsic safety, high energy density (1086 Wh kg−1), and environmental compatibility, making them attractive for wearable applications. However, free water in the electrolyte induces severe anode degradation while being a critical reactant for cathode redox, presenting a dilemma between anode stability and cathode functionality. The semi-open structure of FZABs allows airborne water to permeate and migrate to the anode, causing interfacial instability, while high surface area accelerates solvent evaporation, leading to increased internal resistance and salt crystallization. Consequently, typical cycle life is limited to <50 h. To overcome these challenges, we report a polymer electrolyte that captures atmospheric water as a solvent through the semi-open structure, achieved by introducing acetamide (AA), identified via unsupervised clustering algorithms, into the poly(vinylidene fluoride-hexafluoropropylene)/zinc trifluoromethanesulfonate (PVDF-HFP/Zn(OTf)2) system. AA incorporation preserves solvent-retention capability while reconstructing the Zn2+ coordination structure, promoting salt dissociation and polymer-segment mobility. Low adsorption energy of AA on zinc surfaces suppresses parasitic reactions from ambient moisture, and preferential adsorption across zinc crystal planes directs Zn2+ deposition along the (002) face, leading to uniform plating morphology. The exogenous aqueous polymer electrolyte exhibits superior mechanical properties, enabling stable output even after compression by a 1.7-t vehicle. As proof-of-concept, FZABs integrated with fiber solar cells and sensors in clothing enabled real-time health monitoring and sustainable energy utilization, demonstrating promising practical applications.