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/s40843-026-4302-9
The pre-deposited lead iodide (PbI2) film in two-step inverted perovskite solar cells (PSCs) often exhibits a dense structure, which impedes the diffusion and reaction of organic ammonium salts, leading to unreacted PbI2 residues and compromised device performance. To address this, 2,4-oxazolidinedione (OD) is introduced as a molecule additive into the PbI2 precursor solution. Owing to its stronger coordination with PbI2, OD effectively modulates its crystallization behavior, resulting in a porous structure. This porous structure significantly facilitates the diffusion and infiltration of organic ammonium salts, thereby minimizing PbI2 residue and enhancing the completeness of the perovskite conversion. Furthermore, OD and the constructed porous network jointly retard the crystallization kinetics of perovskite, promoting the formation of perovskite films with improved crystallinity and preferred crystal orientation. Therefore, the optimized PSCs achieve a power conversion efficiency (PCE) of 26.31%, and demonstrate excellent operational stability, retaining 90.24% of initial PCE for 1500 h at 25°C and 90.47% after 1000 h at 65°C. The champion device exhibits a VOC of 1.197 V, a JSC of 26.28 mA cm-2, and an FF of 83.58%, with negligible hysteresis. This study presents a straightforward yet effective approach to advancing the performance and stability of inverted PSCs fabricated via the two-step method.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4197-4
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/s40843-025-3865-1
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/s40843-025-3558-4
The development of advanced titanium alloys capable of operating above 600 °C remains a critical challenge for aerospace propulsion systems, where conventional Ti alloys suffer from insufficient high-temperature strength and microstructural instability. Here, we propose a computationally driven design strategy for titanium-based medium-entropy alloys (MEAs) that integrates thermodynamic phase prediction with mechanistically informed strength modeling, enabling systematic exploration of the Ti-Nb-Al-Cr quaternary system. The optimized Ti70Nb10Al15Cr5 MEA exhibits exceptional performance metrics: 18% room-temperature ductility (as-cast), a yield strength of 520.7 MPa at 650 °C (post-aging), and an ultralow density of 4.76 g/cm3 (45% lighter than Inconel 718). Microstructural characterization reveals a metastable single-phase BCC structure in the as-cast state, which transforms into a BCC/Ti3Al dual-phase system upon aging, with temperature-dependent precipitate morphology and phase stability. The alloy demonstrates superior high-temperature strength retention up to 900 °C (>80 MPa yield strength), outperforming commercial titanium alloys (e.g., Ti-1100, TG6) and bridging the performance gap between conventional Ti alloys and nickel-based superalloys. This work establishes a multi-criteria design paradigm for entropy-engineered alloys, offering a viable pathway to lightweight, high-temperature structural materials for next-generation aerospace applications.
SCIENCE CHINA 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/s40843-025-3860-0
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.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61072-4
Sodium-ion capacitors (SICs) typically feature a hybrid design, incorporating a battery-type anode that operates by faradaic redox reactions and an activated carbon cathode that functions through electrical double-layer (EDL) adsorption/desorption. However, the kinetics of faradaic processes are inherently slower than those of EDL processes, leading to a fundamental problem known as kinetic imbalance between the electrodes, which hinders the development of high-performance SICs. To address this, we synthesized composites of bismuth nanoparticles in N-doped carbon (Bi@NC) by a high-temperature sintering method. The resulting Bi@NC anode has a specific capacity of 300 mAh g−1 at 0.5 A g−1, an exceptional rate capability (maintaining performance at currents exceeding 75 A g−1), and outstanding cycling stability over 12,000 cycles. Three-electrode Swagelok cell tests revealed that this high-rate Bi@NC composite effectively decreases the kinetic gap with the activated carbon cathode, as shown by an analysis of their respective potential swing windows (vs. Na/Na+). This enables the fabricated SIC to achieve a maximum energy density of 115 Wh kg−1, a peak power density of 45,535 W kg−1, and a long cycle life exceeding 8,000 cycles.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507057
This study presents a novel electrochemical sensor for the rapid detection of trace lead ions (Pb(II)) in water, utilizing a rod-shaped bismuth-based electrode. The electrode was fabricated by modifying a glassy carbon electrode (GCE) with basic bismuth nitrate [Bi6O5(OH)3](NO3)5·3H2O, synthesized via a chemical precipitation method. The sensor was characterized by X-ray diffraction (XRD), Fourier-transform infrared spectroscopy (FTIR), electron probe microanalysis (EPMA), and energy-dispersive X-ray spectroscopy (EDS), confirming the rod-like morphology and composition. Electrochemical detection was performed using differential pulse voltammetry (DPV) in a 0.1 mol·L−1 NaAc-HAc buffer (pH 4.3). The sensor exhibited a linear detection range for Pb(II) from 1 to 90 μg·L−1, with a detection limit of 0.34 μg·L−1 and a sensitivity of 106 μA·(μmol·L−1)−1. The electrode demonstrated excellent anti-interference capability and reproducibility. Recovery tests in real water samples (tap water and campus lake water) yielded high recovery rates, indicating practical applicability. This work provides a simple, cost-effective, and reliable method for monitoring trace Pb(II) in environmental water, particularly relevant for public swimming pools and similar aquatic facilities.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3932-1
Organic room-temperature phosphorescence (RTP) materials have attracted considerable interest due to their unique advantages, such as tunable molecular structures, excellent processability, intrinsic flexibility, and diverse excited-state characteristics. Among these, stimuli-responsive RTP materials, whose luminescence can be modulated by external stimuli (e.g., light, pH, heat, mechanical force or solvent), hold great promise for advanced applications like anti-counterfeiting, information encryption, and sensing. In this review, we systematically summarize recent advances in stimuli-responsive RTP materials, classifying them based on their activation mechanisms. Specifically, we elucidate the fundamental principles governing their stimulus-responsive behaviors and highlight representative examples from various categories. Furthermore, we explore structure-property relationships and design strategies to establish a foundational framework for understanding these materials. This review not only deepens the mechanistic insights into stimuli-responsive RTP systems but also provides strategic guidance for the rational design of next-generation intelligent RTP materials in multidisciplinary fields.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61103-1
Flexible pressure sensors that simultaneously achieve high sensitivity, mechanical strength, and long-term stability remain challenging, particularly for biomass-derived carbon aerogels that are intrinsically brittle and prone to structural collapse. Here, we report a bidirectionally frozen carbon aerogel reinforced with tetrapod ZnO whiskers (T-ZnOWs) for high-performance pressure sensing. The aerogel is composed of cellulose nanofibers (CNFs), nitrogen-doped carbon nanosheets (NCs), and T-ZnOWs, which are reorganized into a mechanically stable, parallel lamellar structure via bidirectional freezing. T-ZnOWs act as rigid interlayer pillars, bridging adjacent carbon lamellae to form a 'layer-support' structure that enables efficient directional stress transfer, suppresses interlayer slippage, and promotes cooperative deformation. The nitrogen-doped carbon nanosheets introduce defect-rich conductive paths, enhancing piezoresistive response. Due to modulus mismatch between the supports and carbon layers, applied stress concentrates at layer/support interfaces, generating localized high-stress regions that amplify electrical signal changes. The aerogel is infiltrated with polydimethylsiloxane (PDMS) to form a conformal elastic encapsulating layer, improving durability. The resulting sensor exhibits a high gauge factor of 34.4, an ultrahigh sensitivity of 248.41 kPa−1 over a broad pressure range (0–19 kPa), fast response (24 ms) and recovery (69 ms) times, and stable operation over 5000 loading–unloading cycles. The sensor reliably detects physiological signals and joint motions, demonstrating potential for wearable and intelligent sensing applications. This work provides a strategy to improve the mechanical reliability and sensing performance of biomass-derived carbon aerogels.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60635-4
A Cu-based carbon catalyst (H-Cu/C) with octahedral morphology was synthesized by pyrolyzing the metal-organic framework (MOF) precursor HKUST-1 under inert N2 atmosphere. Characterization via XPS, XRD, SEM, and HRTEM revealed that Cu(0) nanoparticles were uniformly dispersed in a carbon matrix, with island-like Cu2O structures serving as active sites. The carbon matrix effectively stabilized the metal nanoparticles, suppressing migration and sintering during reaction. Combined with TEMPO and using molecular oxygen as a green oxidant, the H-Cu/C catalyst exhibited high efficiency in the selective oxidation of aromatic alcohols to corresponding aldehydes under alkali-free conditions. Using benzyl alcohol as a model substrate, an alcohol conversion of 99.2% and a benzaldehyde yield of 94.1% were achieved under mild conditions (100 °C, 0.5 MPa O2, 1 h). The catalytic system demonstrated excellent universality for various mono- and ortho/para-disubstituted aromatic alcohols, affording conversions over 99% and aldehyde yields above 95%. The catalyst could be regenerated via H2 reduction and reused without significant loss of activity. This work provides a new strategy for designing green and efficient non-noble metal catalytic systems for oxidation reactions.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025022501
The pretreatment of trace emerging contaminants in environmental matrices is challenging due to diverse methods and uncertain applicability. This study compared solid-phase extraction (SPE) and liquid-liquid extraction (LLE) for extracting endocrine-disrupting compounds (EDCs), particularly phthalate esters (PAEs), using laboratory-spiked blank samples. LLE achieved satisfactory recoveries for PAEs at spike levels below 4 μg·L−1, enabling detection of five PAEs including diisodecyl phthalate (DIDP), with improved efficiency via repeated extraction. SPE offered lower detection and quantification limits, higher accuracy and sensitivity, and achieved high recoveries for 12 EDCs and 10 antibiotics at spike levels ≥0.2 μg·L−1, with detection limits as low as 0.1–6.4 ng·L−1. The developed SPE coupled with liquid chromatography-Orbitrap mass spectrometry (LC-Orbitrap MS) method was applied to industrial wastewater samples. Across five industrial sectors (coatings, rubber, pharmaceuticals, inks, and materials technology), five antibiotics and ten EDCs were detected, with total concentrations ranging from 0.03–0.56 μg·L−1 and 0.07–1.91 μg·L−1, respectively. Sector-specific profiles emerged: rubber industry effluent was dominated by dibutyl phthalate (DBP) at 1.07 μg·L−1, while pharmaceutical effluent featured sulfamonomethoxine (SMM) at 0.34 μg·L−1. This systematic evaluation demonstrates that SPE-LC-Orbitrap MS is robust for complex matrices, providing a technical foundation for accurate quantification of emerging contaminants in industrial wastewater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3934-1
Solar energy, a clean and abundant resource, can be stored as latent heat in solid-solid phase change materials (SSPCMs) and subsequently utilized, offering great potential for advancing passive thermal management technologies such as thermal camouflage. Conventional SSPCMs often require active heating for high-temperature conditions, leading to additional energy consumption. Moreover, their permanent crosslinked structures limit reprocessability and increase environmental burden. Herein, we present a lizard-skin-inspired, solar-thermal-responsive, and reprocessable SSPCM (FTSPCM) featuring a dual crosslinked structure composed of dynamic phenol–carbamate bonds and Fe3+@Tannic acid (TA) coordination. Polyethylene glycol (PEG) functions as the phase change segment, while TA introduces both reversible covalent crosslinking and photothermal responsiveness. The FTSPCM exhibits a high latent heat of 102.9 J g−1, excellent shape stability, and maintains its thermal performance after three reprocessing cycles at 120 °C. The Fe3+@TA coordination network enables strong near-infrared absorption and efficient solar-thermal conversion, achieving a surface temperature of 62 °C and a conversion efficiency of 96.85% under 2 Suns irradiation. This dual-function design allows the material to achieve passive thermal camouflage via latent heat release at low temperatures and solar-assisted photothermal heating at high temperatures. This work presents a sustainable strategy for developing reprocessable, solar-responsive SSPCMs, showcasing the distinctive advantages of tannic acid-derived polyphenol chemistry in constructing passive thermal management systems for energy-efficient thermal camouflage and solar-driven thermal energy storage.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511003
Tailings dam leakage can cause secondary sudden water pollution events, imposing severe combined stress of high turbidity and heavy metal contamination on natural water bodies within a short period, threatening aquatic ecological security. Existing studies have systematically revealed the pollution characteristics and biological effects of such events, which are fundamentally distinct from natural high-turbidity water and industrial wastewater leakage. Compared with natural high-turbidity water, tailings leakage inputs finer particles with higher specific surface area, leading to more intense and prolonged turbidity stress. Meanwhile, heavy metals in tailings are more enriched than natural sediments, with higher proportions of active forms and bioavailability, causing significant bioaccumulation and toxic effects, and long-term decline in benthic community species richness. Compared with industrial wastewater leakage, tailings leakage simultaneously releases high concentrations of fine suspended solids and multiple heavy metals, forming a unique 'physical-chemical' combined stress. This synergistic effect amplifies biological toxicity through multiple pathways such as mechanical damage, light limitation, and oxidative stress, resulting in severe and often irreversible ecological damage, such as impaired fish swimming behavior and collapse of benthic community structure. Analyzing the long-term impacts of tailings leakage on aquatic ecosystems from the perspective of combined stress is helpful for providing scientific basis for emergency response and medium-to-long-term ecological risk prevention of related sudden water pollution events.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4012-4
Stimuli-responsive fluorescent hydrogels, owing to their tunable optical properties and unique smart response characteristics, have significant potential in encryption applications and information security. However, most current systems are limited to single-stimulus responsiveness and lack the capability for programmable information erasure or multi-modal dynamic synergy. Hence, we propose a multi-stimuli-responsive phase-change hydrogel incorporating aggregation-induced emission hydrophobic carbon dots (AIE-HCDs) and polyethylene glycol (PEG)-cellulose network, demonstrating dynamic fluorescence chromism under various external triggers. The hydrogel exhibits solvent-exchange-triggered fluorescence color changes from blue to red, enabled by the concentration modulation of AIE-HCDs through the exchange between PEG and water. Additionally, the temperature-induced phase transition of PEG from crystalline to molten state modulates the aggregation and dispersion of AIE-HCDs, thereby enabling dynamic fluorescence color changes. The phase transition further confers excellent shape-memory behavior and adjustable mechanical properties, with the tensile modulus varying from 6.28 MPa in the molten state to 36.23 MPa in the crystalline state, while maintaining high transparency (~88% in the molten state). By utilizing micro-contact printing and the multi-stimulus response, an encryption platform enables information to be hidden, selectively read under sequential stimuli (thermal, UV, and solvent), and completely erased upon demand. This strategy demonstrates significant potential for advancing high-level information encryption and anti-counterfeiting technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3910-0
Perovskite photovoltaics (PVs) have emerged as leading candidates for next-generation solar technology due to low production costs, high efficiencies, and compatibility with large-area manufacturing. However, commercialization faces bottlenecks: toxic solvents, non-uniform film quality over large areas, and insufficient operational reliability. Wang et al. developed a green-solvent ink and a solvent-confinement edge-protection (SCEP) strategy to address these issues. By increasing the fraction of 2-methyltetrahydrofuran (2-MeTHF) in a gamma-valerolactone (GVL) based solvent system, they weakened perovskite-GVL coordination, accelerated solvent extraction during vacuum-chamber drying, and promoted rapid supersaturation toward the desired alpha-phase while suppressing the non-perovskite delta-phase. This resulted in perovskite films with enlarged grains, reduced voids, and improved crystallinity in ambient air. To mitigate edge effects during slot-die coating, they incorporated a cationic surfactant, trimethyltetradecylammonium chloride (TAC), which self-assembled at the liquid-vapor interface, reducing surface tension and inducing Marangoni flow to equalize evaporation. This SCEP strategy suppressed rapid edge evaporation, leading to uniform film morphology. The best-performing modules achieved a total area of 7200 cm², with J-V curves and stabilized efficiency certifications from NREL and TÜV Rheinland, demonstrating commercial viability. This work provides a unified framework for solvent design and process control, advancing perovskite PV modules toward industrial production.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60651-2
Carbohydrates, derived from abundant biomass resources, hold great promise for conversion into fine platform chemicals and fuels, which is crucial for sustainable development. The processes for carbohydrate conversion are predominantly driven by catalysis, with active components such as Brønsted acids and Lewis acids. This review provides a comprehensive overview of the catalytic conversion of various carbohydrates (monosaccharides, disaccharides, and polysaccharides) into high-value-added compounds. It elaborates on the specific pathways and mechanisms involved in reactions like hydrolysis, isomerization, and dehydration for target molecules such as 5-hydroxymethylfurfural, lactic acid, and furfural. Furthermore, the subsequent derivatization of these platform compounds and their application prospects in energy-related fields, including bio-fuels and batteries, are discussed. Finally, the current challenges in research are summarized, and future directions for the development of low-cost and high-performance catalytic systems are outlined.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60655-X
Defect-induced nonradiative recombination critically restricts the power conversion efficiency (PCE) and stability of perovskite solar cells (PSCs). Lewis base additives show great promise in defect passivation, but current screening methods rely heavily on empirical trial and error and lack clear design principles, making it difficult to efficiently discover high-performance candidate materials. Here, we present a machine learning (ML) framework to intelligently screen Lewis base molecules for defect passivation. We trained six ensemble models on a dataset of 146 experimental data points, with Light Gradient Boosting Machine (LightGBM) yielding the best classification performance (87% accuracy). Shapley Additive Explanations (SHAP) interpretability analysis subsequently identifies the highest occupied molecular orbital (HOMO) energy (−7.5 to −6.3 eV), additive concentration (2.5 to 6.5 mg/mL), and simplified molecular backbones (O atom ≤ 2, C atom < 5) as critical design criteria. The ML prediction was experimentally validated: (S)-pyrrolidine-3-carboxylic acid ((S)-PCA) and 2-methyl-1,3-cyclopentanedione (MCPD) (Class Ⅱ) improved PCE by 2.22% and 2.01%, respectively, while 3-hydroxymethyl-3-methylbutanenitrile (3-HMBN) (Class Ⅰ) showed minimal gain. Density functional theory (DFT) calculations further confirmed the stronger binding affinities and elevated defect formation energies of Class Ⅱ additives. Notably, the champion (S)-PCA device achieved a PCE of 24.05%. This work established an ML-accelerated paradigm for the rational design of defect passivators, bridging data science and photovoltaics.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60676-7
Landfilled municipal solid waste (MSW) in China exceeds 8 billion tons, with high moisture (30–50%) and ash content (>50%), complicating conventional treatment. Slag gasification offers a clean and resource-oriented route, but heavy metal leaching from the resulting slag poses environmental risks. This study investigates the effect of rice husk addition (5–15%) on the vitrification of landfilled-waste slag and the immobilization of heavy metals (Cr, Zn, Cu). Results show that adding 5–10% rice husk lowers the slag flow temperature to a minimum of 1213 °C, attributed to active SiO2 reacting with CaO and Fe2O3 to form low-melting eutectics like anorthite. Leaching concentrations of Cr and Zn decrease from 41.60 and 108.00 mg/L to 5.89 and 7.10 mg/L, respectively, with 10–15% rice husk. The amorphous SiO2 enhances silicate polymerization (Q3, Q4 networks), promoting physical encapsulation and chemical incorporation of heavy metals into stable phases such as Zn2SiO4 and CuFe2O4, increasing the residual fraction and reducing bioavailability. At temperatures >1400 °C, volatilization of Cu and Zn increases, with residual rates dropping to 33–60% and 31–55%, respectively, while Cr remains stable (70–123%). This work elucidates the mechanistic role of rice husk in slag structure modulation and heavy metal immobilization, providing a theoretical basis for the co-treatment of landfilled waste and biomass via a 'treating waste with waste' strategy.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025050801
Oil-contaminated water poses severe ecological and public health risks, yet conventional treatment technologies are hindered by complex processing and low selectivity. Metal-organic frameworks (MOFs) and their composites, with tunable pore structures, high surface areas, and controllable wettability, offer promising solutions. This review systematically classifies design strategies and synthesis methods for MOFs and MOF-based composites tailored for oil-water separation. We highlight recent advances, emphasizing structure–function relationships. Key performance metrics from representative studies include water contact angles up to 172.3°, separation efficiencies exceeding 99.9%, and adsorption capacities reaching 168 g·g⁻¹. Challenges such as scalability, stability, and fouling resistance are discussed, along with future directions for practical implementation.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026022402
Graphene oxide–silver nanoparticle (GO-AgNPs) nanocomposites synergistically combine the high specific surface area and biocompatibility of graphene oxide with the potent antibacterial and optical properties of silver nanoparticles. This review systematically examines current synthetic strategies—physical, chemical, and biological—and their influence on nanocomposite morphology, loading efficiency, and stability. The biomedical applications of GO-AgNPs are critically analyzed, focusing on antimicrobial activity, anticancer therapy, drug delivery, and biosensing. Mechanistic insights reveal that antimicrobial action involves membrane disruption, oxidative stress, and damage to biomolecules, while anticancer effects are mediated through reactive oxygen species (ROS) generation. The review also addresses challenges such as AgNP aggregation and stability, which are mitigated by GO support. Future directions emphasize the development of multifunctional nanomedicine platforms, with a need for standardized toxicity assessments and scalable synthesis. This comprehensive overview aims to guide further research and clinical translation of GO-AgNPs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4075-1
Titanium alloys, such as Ti-6Al-4V (TC4), are indispensable in aerospace, biomedical, and advanced manufacturing due to their high specific strength, corrosion resistance, and biocompatibility. However, their inherent strength-ductility trade-off and limited stiffness hinder next-generation lightweight structural applications. Traditional ceramic reinforcements (TiC, TiB2, SiC) improve strength but introduce brittleness and interfacial incompatibility, degrading plasticity and fatigue resistance. Graphene, with theoretical strength ~130 GPa and Young's modulus ~1 TPa, offers a promising two-dimensional reinforcement. This review systematically examines graphene-reinforced titanium matrix composites (TMCs), focusing on the intrinsic relationship between preparation, microstructure, and properties. Key preparation routes include powder metallurgy and additive manufacturing, with challenges in achieving uniform dispersion and controlling interfacial reactions. Recent studies demonstrate that surface modification and process optimization can form an ideal interface structure comprising a nano-TiC layer and residual graphene. Even at low graphene additions, synergistic strengthening mechanisms—load transfer, fine-grain strengthening, and Orowan dislocation bypass—significantly enhance strength, hardness, and wear resistance while preserving ductility. This review consolidates critical theoretical and experimental findings, offering guidance to overcome technological bottlenecks and promote engineering applications of graphene-reinforced TMCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4063-2
Quantum dot light-emitting diodes (QLEDs) are emerging as a leader in next-generation display technology. In principle, the efficiency of QLEDs is highly reliant on the radiative recombination rate of injected electrons and holes in the QD emissive layer. Within a solitary light-emitting cycle, a pre-negative-charged QD bursts into a fleeting sparkle upon encountering a hole, much like a lighted piston within a roaring engine. More pistons bring higher horsepower. The challenge of achieving highly efficient QLED lies in how to increase the number of pre-negatively charged QDs. To address these limitations, we developed a ZnO@ZnMgO core-shell nanoparticle (NP)-based electron transport layer (ETL). This design synergistically combines the high conductivity of ZnO core and the low defect density of the ZnMgO shell. Measured by electron-excited transient absorption, the average electron population (<N_e>) in the emissive layer for ZnO@ZnMgO and ZnMgO-based QLEDs was 0.61 and 0.33 at 4 V, respectively, which greatly increases the carrier recombination efficiency. As a result, green QLEDs achieve a peak EQE of 30.66%, maximum luminance of 1,615,039.85 cd/m2, and a low turn-on voltage of approximately 2 V. The T95 operational lifetime exceeded 29,000 h at 1,000 cd/m2. Currently, all parameters are at the top level within the QLED region.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4035-5
Electrocatalytic CO2 reduction reaction (CO2RR) to formate offers a promising pathway for storing renewable electricity in chemical fuels and enabling carbon recycling. The development of efficient and stable catalysts for this specific pathway, however, remains a central challenge. Heteroatom doping can significantly tune the interaction between active sites and key intermediates, boosting catalytic performance. Conventional doping in Bi-based catalysts often relies on uncontrollable in-situ electrochemical processes, leading to ineffective bulk incorporation. Here, we present a simple pre-doping strategy that enables precise doping at surface active sites, thereby enhancing electrochemical performance. The resulting catalyst achieves >95% Faradaic efficiency for formate across 100–500 mA cm−2 in a flow cell and maintains >95% efficiency for over 70 h at 100 mA cm−2 in a membrane electrode assembly, outperforming pure Bi and Bi2S3. A solar-driven system further demonstrates a 4.4% solar-to-formate conversion efficiency. Mechanistic studies reveal that sulfur doping increases electron density, stabilizes the key *OCHO intermediate, and suppresses hydrogen evolution. These findings provide valuable insights into the precise pre-doping modulation of surface active sites for designing highly efficient and stable CO2RR catalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4004-3
The development of efficient and stable oxygen evolution reaction (OER) electrocatalysts is critical for clean energy technologies, yet conventional cobalt-based spinel catalysts often suffer from insufficient activity and structural instability under operating conditions. To address these challenges, this study proposes and constructs a cation-ordered spinel-like catalyst (HVI Metal-CoMoO4/NF). The unique crystalline framework induces significant Jahn-Teller distortion and pre-stabilizes a Co2+/Co3+ mixed-valence state at the cobalt active centers via asymmetric Co–O–Mo bridges, effectively optimizing bulk charge transport. Electrochemical tests demonstrate that its performance significantly surpasses that of benchmark materials, requiring only an overpotential of 307 mV to drive a current density of 100 mA cm−2 in 1.0 M KOH, with a Tafel slope of 63.13 mV dec−1, maintaining stable operation for over 320 h at high current density. Crucially, our structural and in situ characterization results clearly reveal a stable and well-crystallized reconstruction behavior from the surface into the bulk of the spinel-like pre-catalyst during the OER. This work fundamentally addresses the challenges of disordered reconstruction and unstable active phases in traditional spinel catalysts, providing a paradigm for regulating the dynamic evolution of electrocatalysts through precise structural design.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4116-0
The design of solid electrolyte interphases (SEIs) for poly(vinylidene fluoride)-based solid-state batteries has largely focused on solvent-affinity of Li+ to generate robust but ionically sluggish LiF-rich layers, inherently compromising transport kinetics. Here, we establish a paradigm based on quantifiable physicochemical descriptors (ionic potential and donor number) to guide the design of amphitropic ion pairs (AIPs). These AIPs are engineered to simultaneously tailor both the solvent-affinity and anion-affinity of Li+: a solvent-philic cation with high ionic potential (Al3+) first sequesters reactive solvents, clearing the path for a high-donor-number, lithium-philic anion (NO3−) to remodel solvation. This rationally guided, sequential mechanism enables the in situ synthesis of a LiF/Li3N heterostructured SEI, where dendrite-suppressing LiF domains are seamlessly integrated with ultra-fast Li3N ion channels. This design heterogeneity effectively enhances stability and kinetics, yielding a robust and highly conductive interface. Consequently, Li|Li cells achieve >2000 h of stable cycling, and Li|LiNi0.8Co0.1Mn0.1O2 full cells surpass 600 cycles.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3978-0
All-polymer solar cells (all-PSCs) are promising for flexible and wearable electronics due to their excellent stability and mechanical stretchability. However, achieving high performance remains challenging due to difficulties in controlling the morphology of polymer blend films. In this study, a novel polymer donor, PBDTF-DTP, incorporating a weak electron-withdrawing yet large-dipole-moment dithienylphthalimide (DTP-2T) unit, was rationally designed and synthesized for ternary all-PSCs. Introducing PBDTF-DTP as a guest donor enables complementary light absorption and deepens the highest occupied molecular orbital level, simultaneously improving short-circuit current density (J_SC) and open-circuit voltage (V_OC). The large dipole moment of DTP-2T increases the dielectric constant, suppressing non-radiative energy loss and further boosting V_OC. Notably, PBDTF-DTP exhibits a relatively higher molecular electrostatic potential than the host donor, effectively tuning compatibility with both polymer donor and acceptor, regulating blend morphology, and promoting formation of a nanoscale fibrillar network. This optimized morphology facilitates efficient charge generation and transport while suppressing charge recombination. Consequently, ternary all-PSCs based on PM6:PBDTF-DTP:PYIT achieve a synergistic enhancement in J_SC, V_OC, and fill factor, yielding a remarkable power conversion efficiency of 18.01%, significantly higher than that of binary PM6:PYIT devices (15.51%). This study demonstrates that combining electrostatic potential optimization with a ternary strategy provides an effective approach to regulate morphology and achieve high-efficiency all-PSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4031-6
Organic fluorophores operating in the second near-infrared (NIR-II, 1000–1700 nm) window are highly attractive for cancer phototheranostics. Yet, the advancement of aza-BODIPY-based NIR-II dyes remains challenging due to their limited spectral tunability and diminished fluorescence quantum yields (FLQY) under physiological conditions. Herein, we propose a rational donor-acceptor (D-A) molecular engineering strategy to construct an aza-BODIPY fluorophore, TPACN, featuring intramolecular charge transfer (ICT)-enhanced NIR-II emission and balanced photothermal performance. By introducing electron-rich triphenylamine (TPA) donors and peripheral cyano (–CN) acceptors, the optimized D-A coupling significantly strengthened the ICT effect, leading to broadened NIR absorption, a markedly red-shifted fluorescence peak at 1086 nm, and an exceptional fluorescence quantum yield of 1.55% in dichloromethane (DCM). When encapsulated in F127, TPACN nanoparticles (TPACN NPs) maintained a high aqueous FLQY of 0.20%, accompanied by a notable photothermal conversion efficiency (PCE) of 39% under 808 nm irradiation. The sterically twisted TPA units effectively alleviated aggregation-caused quenching (ACQ) and fine-tuned the excited-state energy dissipation pathways, realizing a synergistic balance between radiative (fluorescence) and non-radiative (heat) relaxation. Benefiting from these optimized photophysical properties, TPACN NPs achieved high-resolution NIR-I photoacoustic and NIR-II fluorescence dual-modal imaging, enabling accurate tumor visualization and efficient photothermal ablation in vivo. This work introduces a general design paradigm that exploits ICT modulation and steric engineering to overcome the intrinsic fluorescence bottleneck of aza-BODIPY systems, offering new molecular insights for the advancement of high-performance NIR-II dyes for precision phototheranostics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4274-x
The escalating power density of electronic devices necessitates effective visible-light shielding in advanced packaging to ensure circuit security and long-term reliability. Photosensitive polyimides (PSPI) serve dual roles as photodefinable dielectrics and structural layers, but intrinsically black PSPI (B-PSPI) suffer from competitive ultraviolet (UV) absorption between chromophores and photosensitive moieties, limiting co-optimization of deep visible-light blocking and lithographic resolution. Here, we report a main-/side-chain spatial decoupling strategy to synthesize a novel B-PSPI. By polymerizing pyromellitic dianhydride with a main-chain coloring monomer (4,4'-diaminodiphenylamine) and a side-chain photosensitive monomer (1,4-dihydropyridine-functionalized diamine), the monomer stoichiometric ratio is precisely engineered. This design spatially isolates functional groups and enhances charge transfer, yielding exceptional visible-light shielding (CIE L* index of 21.39, cut-off wavelength ≈ 555 nm) with good lithographic sensitivity. UV exposure triggers in situ generation of coordination sites from photosensitive groups, anchoring active metal species for electroless copper plating. This enables direct additive fabrication of fine copper lines (40/80 μm line width/spacing) with robust Cu/B-PSPI interfacial adhesion of 16.6 MPa. This work provides a robust molecular design paradigm for B-PSPI, integrating superior optical shielding and surface metallization for high-density interconnect applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4181-6
Green hydrogen production via electrocatalytic water splitting is pivotal for sustainable energy, yet the high cost and scarcity of platinum (Pt) catalysts impede large-scale adoption. Ruthenium (Ru)-based materials emerge as promising alternatives, but their performance requires enhancement. Two-dimensional transition metal dichalcogenides (TMDs), particularly ReS2, offer intrinsic 1T' phase with good conductivity and stability, yet suffer from inert surfaces limiting water adsorption. Here, we report a heterostructure comprising Ru nanoclusters anchored on ReS2 nanosheets (Ru/ReS2) to modulate electronic structure via d-p coupling. This design enhances water dissociation kinetics and optimizes hydrogen adsorption free energy (ΔG_H*). The Ru/ReS2 catalyst exhibits superior hydrogen evolution reaction (HER) activity in acidic media, achieving an overpotential of 47 mV at 10 mA cm−2 and a Tafel slope of 38 mV dec−1, outperforming commercial Pt/C (overpotential 54 mV, Tafel slope 45 mV dec−1). Notably, it demonstrates exceptional stability, with negligible degradation after 10,000 cyclic voltammetry cycles, contrasting with Pt/C's 54 mV overpotential increase. Density functional theory calculations reveal that d-p coupling between Ru and ReS2 optimizes the electronic structure, facilitating water adsorption and dissociation. This work provides a rational strategy for designing efficient, durable, and cost-effective HER electrocatalysts for green hydrogen production.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3480-1
Electrochemical nitrate reduction to ammonia (NRA) offers a sustainable route for wastewater denitrification and decentralized ammonia synthesis, but its practical deployment is constrained by sluggish reaction kinetics and the competing hydrogen evolution reaction (HER). Monometallic Cu electrocatalysts, despite favorable nitrate adsorption and tunable electronic structure, exhibit weak H* adsorption, limiting the hydrogen radical-mediated pathway that suppresses HER at low overpotentials. Here, highly dispersed Cu/WO3 heterojunctions supported on carbon fiber were synthesized via carbothermal shock reduction, which reaches ultra-high temperatures within seconds and prevents active-site accumulation. The optimal Cu/WO3 heterojunction achieves an ammonia yield rate of 158.66 μmol h−1 cm−2 and a Faradaic efficiency of 98.27%. Electron paramagnetic resonance and density functional theory calculations reveal a synergistic mechanism: Cu sites preferentially adsorb NO3−, while adjacent WO3 sites accelerate water dissociation to generate hydrogen radicals (H*), which drive the continuous hydrogenation of nitrate to ammonia. This spatial separation of functions promotes the H*-mediated pathway and suppresses HER. The work establishes a heterojunction design strategy for non-precious-metal NRA electrocatalysts, enabling high-rate, high-selectivity ammonia production under mild conditions.