SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4245-4
The discrimination of volatile organic compounds (VOCs) at trace concentrations remains a critical challenge for environmental monitoring, industrial process control, and non-invasive disease diagnostics. Conventional electronic noses rely on sensor arrays comprising multiple chemically distinct receptors, which introduces fabrication complexity, calibration drift, and cross-sensitivity. Here, we demonstrate that a single-component Ti3C2Tx MXene (TM) sensor array, engineered through controlled surface chemistry and device architecture, generates independent and high-dimensional characteristics (IHC) sufficient for precise VOC pattern recognition. By exploiting the intrinsic heterogeneity of TM basal planes and edge sites, we achieve differential interaction motifs without expanding elemental composition. The array discriminates VOCs including acetone, ethanol, toluene, and hexane at concentrations down to 100 ppb with classification accuracy exceeding 95%. Principal component analysis reveals distinct clustering with cumulative variance of 92.3% captured by the first three principal components. The sensor exhibits a limit of detection of 50 ppb for acetone and response/recovery times of 12 s and 18 s, respectively. Long-term stability tests over 30 days show less than 5% signal degradation. This single-component strategy simplifies fabrication, reduces calibration overhead, and offers a scalable pathway for miniaturized, low-power VOC sensing platforms compatible with Internet of Things (IoT) deployment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4425-4
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/s40843-026-4477-7
The rapid demand for high-energy-density lithium batteries necessitates advanced solid-state electrolytes (SSEs) to overcome the safety and performance limitations of conventional liquid counterparts. Macrocyclic compounds, with their well-defined cavities, programmable binding sites, and tunable self-assembly, have emerged as powerful molecular regulators for designing next-generation SSEs. This review examines recent advancements in macrocyclic compound-based SSEs by categorizing their functions into four fundamental supramolecular regulation paradigms: cation-centered regulation (e.g., crown ethers), anion-centered regulation (e.g., calixarenes and calixpyrroles), channel-dominated transport (e.g., cyclodextrins), and hybrid regulation (e.g., cucurbiturils). We elucidate how these macrocycles precisely control ion coordination, modulate migration dynamics, and reshape interfacial chemistry, leading to enhanced ionic conductivity, improved Li+ transference numbers, suppressed lithium dendrite growth, and superior interfacial stability. While each paradigm offers distinct advantages, the most promising SSEs often leverage synergistic combinations of these strategies. Finally, we highlight the remaining challenges, including synthetic complexity and multi-objective performance trade-offs, and propose future research directions for developing highly efficient and durable macrocycle-based solid-state lithium batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4404-7
Electrochemical propylene epoxidation offers a sustainable route to propylene oxide (PO), but achieving high selectivity and stability under industrial current densities remains challenging. Herein, we report a high entropy amorphous CoFeNiCrMnBOx borate loaded with high valence Pt single atoms catalyst (a-Pt-HEBO) for stable bromine radical-mediated propylene epoxidation reaction (BrPOR). The high-entropy amorphous structure reshapes the interfacial hydrogen-bonding network and enriches free water, substantially lowering the energy barrier for water dissociation. Meanwhile, the strong electronic interactions between the coordinatively unsaturated, high-valence single Pt atoms and the substrate effectively prevent transition metal dissolution at high anodic potentials. The catalyst achieved 82.1% Faraday efficiency of PO at an industrial grade current density of 100 mA cm-2, and demonstrated excellent industrial application stability in up to 500 h of continuous test and within a scaled-up electrolyzer (4 × 4 cm2). This work provides a design for high-entropy catalysts in halogen-mediated electrosynthesis and a viable pathway toward carbon-neutral PO production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4275-3
Electrochemical in-situ production of active chlorine (AC) via chlorine evolution reaction (CER) can alleviate hull corrosion and residual chlorine overage, which is a highly reliable disinfectant for sewage and ballast water. Nonetheless, the primarily competitive oxygen evolution reaction and gradual anode passivation hinder its practical application. Herein, we employed the in-situ hydrothermal strategy to synthesize Ru/TiO2-x to realize high activity and selectivity of CER. The robust interaction of Ru sites and TiO2-x achieved via a one-step hydrothermal synthesis strategy, the structural and valence state characterizations confirm that Ti3+ stabilizes Ru solely in the metallic state (Ru0) via structural confinement effects, effectively inhibiting catalyst oxidation. As a result, the Ru/TiO2-x requires only an overpotential of 33 mV to reach 10 mA cm−2, and possess strong catalytic durability, sustaining continuous operation for 100 h with negligible current decay. Further integration with a triboelectric nanogenerators successfully realizes the generation of AC, which demonstrates a >99.9% inactivation efficiency against Escherichia coli in simulated seawater environments, while also effectively degrading ammonia nitrogen and urea contaminants in domestic wastewater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4298-x
Conventional electrochemical artificial muscles rely on liquid electrolytes, which suffer from poor encapsulation processability, high leakage risks, and inadequate biocompatibility, limiting their application in bionic medicine, wearable exoskeletons, and humanoid robots. To address these bottlenecks, we fabricated a polyvinyl alcohol-polyacrylic acid (PVA-PAA) double-network hydrogel electrolyte and integrated it with twisted carbon nanotube (CNT) yarns via ultraviolet curing, constructing an all-solid-state artificial muscle unit. The unit maintained structural integrity and actuation performance after mechanical deformation treatments such as weaving and knotting. Experimentally, it achieved a maximum contractile stroke of 16% at −1 to 1.8 V and generated an isometric force of approximately 500 mN at −1 to 2 V. The solid-state artificial muscles exhibited excellent mechanical properties, compact size, and high flexibility, offering new opportunities for applications in bionic medical devices and intelligent robots.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4378-6
Electrical stimulation (ES) is a powerful strategy to mimic endogenous bioelectricity and accelerate complex tissue regeneration, such as chronic wound healing. However, aligning external stimulation with native bioelectrical and biochemical signals for rapid and scarless tissue regeneration remains challenging. Here, we report a wireless bioelectronic dressing (E-dressing) that establishes stable bioelectronic interfaces and precisely modulates cellular physiological activities. Bioactive allylamine-functionalized gold clusterzymes (AM-AuNCs) with intrinsic superoxide dismutase-like activity were designed as functional modifiers to co-polymerize with acrylic acid (AA), forming conductive p(AA-AuNCs) hydrogels. AM-AuNCs impart the hydrogel with superior antioxidant activity, robust interfacial adhesion, and high conductivity, enabling rapid hemostasis, efficient electrical stimulation transmission, and precise fibroblast regulation. Combined with 1.00 V of electrical stimulation, the p(AA-AuNCs) hydrogel significantly promotes fibroblast proliferation, migration, and alignment by upregulating TGF-β, FGF-2, and EGF. Integrated with a biocompatible, flexible zinc-ion battery delivering sustained and tunable electrical signals for over 7 days, the E-dressing precisely guides collagen remodeling, inhibits myofibroblast activation, and maintains Col I/Col III balance, leading to a 5-fold acceleration of wound closure and a 65.5% reduction in scar formation. This multifunctional E-dressing represents a promising bioelectronic device for precise cellular regulation and multimodal regenerative therapy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4180-9
Developing highly active and stable electrocatalysts based on the lattice oxygen mechanism (LOM) for the oxygen evolution reaction (OER) represents a significant challenge in water splitting. Herein, we successfully introduce oxygen vacancies (Ov) into high-entropy MnFeCoNiCu layered double hydroxides (HE-LDHs) via a solution chemical reduction method utilizing a defect engineering strategy. By precisely tuning the concentration of oxygen vacancies, we effectively activate the lattice oxygen within the HE-LDHs. The optimized Ov-rich high-entropy LDHs (Ov-HE-LDHs) exhibit excellent OER catalytic performance, achieving a current density of 10 mA cm−2 with a remarkably low overpotential of only 210 mV in 1.0 M KOH electrolyte, which is substantially superior to pristine HE-LDHs (315 mV) and commercial IrO2 (330 mV). Furthermore, the catalyst demonstrates outstanding long-term stability, capable of stable operation for 500 h at a high current density of approximately 200 mA cm−2. Advanced X-ray absorption fine structure analysis elucidates the lower metal valence states, indicating the existence of oxygen vacancies, while isotope labeling experiments and in-situ electrochemical Raman spectroscopy strongly confirm the successful activation of the LOM pathway. Density functional theory calculations further validate that the shift in the OER mechanism towards LOM and the resulting reduction in the reaction energy barrier are the fundamental reasons for the catalyst’s enhanced intrinsic activity. This work proposes a novel strategy for activating lattice oxygen in high-entropy LDHs through defect engineering, offering new insights and experimental guidance for the design and development of highly efficient and stable high-entropy OER electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4277-1
Two-dimensional (2D) magnetic materials hold promise for next-generation spintronics, yet most exhibit Curie temperatures (Tc) far below room temperature, limiting practical applications. Here, we report the realization of room-temperature ferromagnetism in CuCrSe2 nanosheets via controlled anion removal achieved by post-synthetic vacuum annealing. Raw CuCrSe2 shows a low Tc of ~120 K, whereas annealed CuCrSe2 (A-CuCrSe2) nanosheets exhibit robust ferromagnetic ordering above 300 K. Structural and compositional analyses, including transmission electron microscopy, Raman spectroscopy, and X-ray absorption spectroscopy, confirm that A-CuCrSe2 retains the original layered crystal structure with an estimated Se vacancy concentration of approximately 10%. Magnetic measurements reveal room-temperature ferromagnetism in exfoliated nanosheets, corroborated by magnetic imaging and electric transport measurements. Anomalous Hall effect (AHE) measurements uncover the coexistence of two ferromagnetic phases within the same sample: one with low Tc (~120 K) and another with high Tc (>300 K), indicating spatially heterogeneous magnetic ordering driven by anion removal distribution. Density functional theory (DFT) calculations elucidate the microscopic mechanism, suggesting that Se vacancies modulate the magnetic exchange interactions, enhancing Tc. This work demonstrates that anion modulation is an effective intrinsic strategy to achieve room-temperature ferromagnetism in 2D materials, potentially advancing spintronic applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4317-4
This correction addresses an image assembly error identified in Fig. 7a of the original article published in Science China Materials, volume 66, issue 6, 2023, pages 2513–2522. The error was confined to the assembly of images in Fig. 7a, which presents H&E staining analysis of major organs from a toxicity study. The corrected version of Fig. 7 is provided in this corrigendum. The original study evaluated the toxicity of lyophilized cabazitaxel (CTX) and Tween 80-based CTX formulations in CD-1 mice following a single intravenous administration of 30 mg kg−1 CTX via the tail vein on day 0, with sacrifice on day 14 for analysis (n=5). The figure includes H&E staining of major organs, complete blood count (CBC) analysis with statistical significance indicated by *p < 0.05, and mouse weight measurements. The correction does not affect the overall results, data interpretation, or scientific conclusions of the original article. All authors have reviewed and approved the content of this corrigendum. The authors sincerely apologize for any inconvenience caused to the editorial office, reviewers, and readers. The article was received on 6 May 2026, accepted on 4 June 2026, and published online on 31 July 2026.
SCIENCE CHINA 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/s40843-025-3709-4
Photoelectrocatalytic (PEC) detoxification of ofloxacin in hyposaline wastewater is hindered by weak built-in electric fields (IEF) and rapid charge recombination. Here, we report a crystal dipole engineering strategy using high-valence Mo-doped BiVO4 to enhance IEF and PEC activity. Mo incorporation breaks lattice symmetry, increasing the crystal dipole moment and amplifying IEF to 2.05 times that of pristine BiVO4. This promotes directional carrier migration, improving electron-hole separation efficiency. The optimized 4% Mo-BiVO4 photoanode achieves 96.5% ofloxacin degradation within 60 minutes and maintains 91.9% degradation efficiency in natural lake water containing saline and organic interferents, demonstrating exceptional anti-interference capability. This work provides a strategy for boosting photocatalytic performance through unit-cell dipole engineering, aiming to enhance sustainability in wastewater treatment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3803-8
The molecular copolymerization of donor-acceptor (D-A) interactions has been effectively utilized to modulate the charge transfer dynamics in polymeric carbon nitride (PCN) photocatalysts. Herein, a D-A configured photocatalyst (TPCN) was constructed by copolymerizing 4,4’,4’’-(1,3,5-triazine-2,4,6-triyl) trianiline (TAPT) as the electron donor with triazine units (electron acceptor). The unique propeller structure of TAPT, combined with the triazine framework, expanded the π-conjugated system and induced a strong built-in electric field (BIEF) across the D-A configuration. Theoretical calculations and transient absorption spectroscopy revealed that this synergistic effect facilitated intramolecular charge separation and widened the range of light absorption, indicating accelerated charge transfer and suppressed recombination in TPCN. The optimized TPCN3 sample exhibited dramatically enhanced photocatalytic H2O2 production (1.74 mmol g−1 h−1), representing a 13.4-fold increase over pristine PCN. Additionally, the TPCN3 sample also exhibited significantly faster degradation kinetics than PCN counterpart toward various emerging contaminants. This work demonstrates a promising strategy for designing efficient metal-free photocatalysts for sustainable H2O2 production and environmental remediation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3831-0
Ammonia decomposition is a key process for generating COx-free hydrogen, yet conventional cobalt catalysts require high temperatures (>550 °C) to overcome the strong Co–N binding that limits N2 desorption. Here we report a novel Co catalyst supported on a Ce and N co-modified perovskite (Co@La_xCe_{1-x}AlO_{3-y}N_z) that achieves 92.6% ammonia conversion with a hydrogen production rate of 9.7 mmol g−1 min−1 at 425 °C and GHSV = 9000 mL h−1 g_cat−1, representing a 125 °C reduction in operating temperature relative to conventional Co-based catalysts. Mechanistic studies using isotopic labeling and in-situ DRIFTS reveal that synergistic Ce and N modification creates a unique LA-L(A+B)-LB active site configuration, which lowers the Schottky barrier at the metal-support interface and promotes facile hydrogen spillover. The reaction proceeds via an interfacial Mars-van Krevelen mechanism, contrasting with the traditional Langmuir-Hinshelwood pathway on conventional Co catalysts. This work provides new insights for designing low-temperature Co-based ammonia decomposition catalysts.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61075-X
The proliferation of electronic devices has intensified electromagnetic radiation pollution, necessitating advanced microwave absorption materials. This study presents the electrospinning fabrication of FeNiCo/carbon nanofiber (FeNiCo/CNF) composites with exceptional microwave absorption properties. The FeNiCo/CNFs achieved a minimum reflection loss (RLmin) of −55.5 dB at 14.24 GHz with an ultrathin matching thickness of only 1.6 mm. Microstructural analysis and electromagnetic parameter testing revealed that the superior absorption stems from the synergistic interaction between the carbon nanofiber network and FeNiCo alloy nanoparticles, which promotes multiple reflections and efficient energy dissipation. The precise control of coercivity and permeability via systematic modulation of magnetic metal composition enabled enhanced impedance matching and optimized magnetic-dielectric synergy. Furthermore, radar cross-section (RCS) simulations confirmed the material's capability to significantly reduce RCS values across a wide angular range, validating its potential for stealth technology applications. This work introduces a cost-effective and sustainable approach for developing ultralight, high-performance microwave absorbers, addressing the limitations of conventional materials such as high density and poor stability.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3695-8
Sulfur-based lithium-ion batteries, particularly those employing sulfurized poly(acrylonitrile) (SPAN) cathodes and graphite (Gr) anodes, offer high theoretical capacity and low cost but suffer from temperature-dependent capacity decay. This study systematically investigates the electrochemical dynamics and capacity decay mechanism of SPAN||Gr pouch cells cycled at 25–55 °C. Multiscale analyses reveal that capacity fade arises from active lithium loss and increased resistance, both accelerated by higher temperatures. Active lithium loss is primarily attributed to dead lithium formation and thickening of the solid electrolyte interphase (SEI) and cathode electrolyte interphase (CEI), while resistance increase is predominantly due to SEI/CEI thickening. As temperature rises, active lithium loss becomes the dominant decay factor. Leveraging the consistent decay mechanism across temperatures, an accelerated aging model based on the Arrhenius equation is developed: y = 0.9x + a. This model accurately predicts cycling parameters at specific temperatures and reduces testing time by 50% when extrapolating from 55 °C to 25 °C. These insights provide critical guidance for developing long-life sulfur-based batteries for practical energy storage applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3603-2
Conventional glass fiber/epoxy (GF/EP) composites, while structurally competent, are hindered by poor interlaminar toughness, low thermal conductivity, and electromagnetic transparency. This study transforms GF/EP composites into advanced structural multifunctional materials by embedding Ti3C2Tx MXene/poly(acrylic acid) (PAA) aerogels (TPA) as integral interlayers. Hybrid composites with tailored architectures—aligned (GFAM_A) and random (GFAM_R) TPA/GF/EP laminates—were fabricated via unidirectional and isotropic freeze-casting, respectively. The integrated aerogel phase promotes crack deflection and distributed energy dissipation, leading to notable enhancements in interlaminar shear strength (ILSS) and fracture toughness. The continuous Ti3C2Tx MXene network within the aerogel creates efficient through-thickness thermal conduction pathways and imparts strong microwave absorption properties. Notably, GFAM_A achieves simultaneous increases of approximately 52% in ILSS, 78% in toughness, and 42% in thermal conductivity, along with effective microwave absorption: a minimum reflection loss of −23.47 dB and a maximum effective bandwidth of 2.70 GHz. This study demonstrates that precision aerogel engineering provides a powerful strategy for upgrading conventional glass fiber composites into advanced multifunctional structural materials.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(25)61036-5
Large graphene oxide (LGO) sheets offer significant advantages over smaller ones in various applications, yet their production via Hummers-type oxidation of large natural graphite flakes remains challenging due to difficulties in achieving full oxidation and avoiding fragmentation. This study provides the first direct evidence that large graphite flakes (up to 1 mm) can be completely oxidized without fragmentation under static conditions, as revealed by in-situ monitoring. The oxidation process is governed by diffusion of the oxidizer between layers, described by Fick's law, where a high oxidizer concentration gradient increases the diffusion rate. By minimizing the amount of concentrated H2SO4 solvent, we achieved a semi-solid state that elevates oxidizer concentration, facilitating Mn(VII) diffusion and enabling complete oxidation of gram-scale large flakes with significantly reduced reagent consumption. Reaction temperature was optimized to balance graphite oxidation and Mn(VII) self-decomposition. Using this approach, 200-, 100-, and 50-mesh natural graphite were fully oxidized with reduced H2SO4 and KMnO4 usage. After exfoliation, LGO with average lateral sizes of 27.3, 58.7, and 116.2 μm were obtained, respectively, with 100% conversion and yield over 165%. This work not only provides a scalable, cost-effective strategy for LGO production but also advances the fundamental understanding of Hummers-type oxidation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4022-7
Transition metal nitrides (TMNs) have emerged as promising alternatives to noble metals in electrocatalysis due to their noble metal-like electronic structures, high conductivity, low cost, and robust chemical stability against corrosion and oxidation under harsh conditions. The rational design and controlled synthesis of TMNs with distinct structures are crucial for developing highly efficient electrocatalysts. This review comprehensively summarizes representative synthetic strategies for TMNs, including direct nitridation, solid-state reaction, sol-gel assisted reaction, and wet-chemical reaction. It presents distinct structural characterizations and demonstrates their advances in electrochemical applications. Finally, the remaining challenges and future research directions for exploring TMNs with well-defined structures are proposed, aiming to guide the development of high-performance electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3805-1
The sluggish kinetics of oxygen reduction and evolution reactions (ORR/OER) at the air electrode impede the practical deployment of fiber zinc-air batteries (FZABs) for wearable electronics. Conventional bifunctional catalysts suffer from an inherent activity trade-off due to the distinct mechanisms of ORR and OER. Here, we propose a spatial decoupling strategy to overcome this limitation by engineering isolated Fe single atoms and Fe–Ir dual-atom pairs on a nitrogen-doped carbon matrix (Fe/FeIr-NC). In this architecture, Fe single atoms serve as ORR centers, while Fe–Ir pairs with tunable spacing are tailored for OER, enabling complete functional separation and independent optimization. The catalyst exhibits an ORR half-wave potential of 0.91 V and an OER overpotential of 250 mV at 10 mA cm−2, yielding a record-low bifunctional gap (ΔE = 0.57 V) that outperforms all reported single- and dual-atom catalysts. A flexible fiber zinc-air battery based on this catalyst delivers a peak power density of 3920 W kg−1, along with a 1.4-fold increase in energy efficiency and a 2.6-fold extension in cycle life compared to the commercial Pt/C + IrO2 benchmark. This work not only breaks the traditional activity trade-off in bifunctional catalysis but also offers a promising route toward high-performance power sources for wearable electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3674-2
Enhancing catalytic activity is a core objective in catalyst design, with active site accessibility being a critical determinant. Polyoxometalate-based metal-organic complexes (POMOCs), combining advantages of POMs and MOCs, offer potential for constructing catalysts with highly accessible active sites. In this study, a series of POMOCs were synthesized using different POM templates: [CoII1.5(L)1.5(PMo12O40)(H2O)4]·3H2O (Co-PMo12), [CoII1.5(L)1.5(PW12O40)(H2O)4]·3H2O (Co-PW12), [CoII2(L)2(SiW12O40)(H2O)4]·11H2O (Co-SiW12), and H[CoII2.5(L)3(P2W18O62)(H2O)8]·10H2O (Co-P2W18). These were characterized by FT-IR, PXRD, and single-crystal X-ray diffraction. Catalytic activity differences for olefin epoxidation were attributed to distinct accessibility of Co(II) sites upon thermal activation. Notably, Co-P2W18 achieved 99% yield of 1,2-epoxycyclooctane within 3 hours at room temperature using O2 as oxidant, owing to highly accessible unsaturated Co(II) sites. This performance is superior to most reported catalysts. The reaction mechanism was investigated using density functional theory. The catalyst exhibited excellent stability over five cycles, with FT-IR, PXRD, and XPS confirming structural and oxidation state integrity. This work highlights the potential of POMOCs in designing catalysts with highly accessible active sites for enhanced catalytic activity.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3678-1
Reed membrane, a natural cellulosic material traditionally used in musical instruments, holds promise in flexible electronics due to its abundance, low cost, and excellent biocompatibility. However, its native form contains water-soluble ions and lipid-soluble waxes that hinder performance in acoustic and electronics by compromising electrical insulation and mechanical stability. Here, supercritical fluid superposition purification (SCSP-WA) is introduced, which utilizes supercritical CO2 with water and acetone as bipolar co-solvents to selectively remove these impurities. Post-SCSP-WA treatment, the reed membrane exhibits significant enhancements in mechanical strength and electrical insulation, achieving a 4-fold increase in elongation at break, improved tensile strength and Young’s modulus, and a 98.5% reduction in leakage current, all while maintaining low and stable capacitance. These improvements stem from the restructuring of the fibrous network into a porous, interconnected microstructure. Material characterization (X-ray photoelectron spectroscopy (XPS), Fourier-transform infrared spectroscopy (FTIR), and scanning electron microscopy (SEM)) confirmed the effective removal of magnesium and waxy functional groups, along with enhanced fiber crosslinking. Cytotoxicity tests further validated the biocompatibility of the SCSP-WA-treated membranes. This environmentally sustainable approach expands the potential of reed membranes in flexible bioelectronics and bio-integrated acoustic systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3795-x
Two-dimensional MXene Ti3C2Tx demonstrates great promise in perovskite solar cells (PSCs). Herein, sulfur-terminated Ti3C2Tx (S-Ti3C2Tx) is developed by modifying Ti3C2Tx via a facile hydrothermal method using thioacetamide. As a perovskite additive, S-Ti3C2Tx outperforms pristine Ti3C2Tx by (1) significantly promoting grain growth, enhancing carrier mobility, and reducing defect density; (2) optimizing energy level alignment to lower interfacial energy barriers and minimize interface non-radiative recombination; (3) stabilizing uncoordinated Pb2+ and [PbI6]4− octahedra via Pb–S bonds while alleviating bulk lattice strain, as this Pb–S interaction exerts a “tape-like” effect. Based on this synergistic mechanism, PSCs with S-Ti3C2Tx achieve a champion efficiency of 25.51%—outperforming control (23.46%) and pristine Ti3C2Tx-based devices (24.54%)—with enhanced stability. This work highlights terminal group engineering as a critical strategy for advancing high-performance PSCs and their potential for emerging photovoltaic technologies.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506005
The escalating generation of medical waste, driven by healthcare expansion and frequent medical activities, poses significant environmental and public health risks. Under the framework of ecological civilization, China is developing a comprehensive policy system for medical waste treatment and disposal, yet the current framework remains nascent and exhibits inconsistencies between national and local policies. This study systematically analyzes the status of national and local policies from 2003 to 2024, collecting 413 policy documents (166 from national ministries and 247 from provincial governments). The analysis examines temporal evolution, regional distribution, and policy focus, alongside the influence of medical waste output, treatment technologies, facility infrastructure, and major epidemic responses. Findings reveal distinct policy phases: initial self-disposal, exploratory management, foundational system building, and rapid development. Regional disparities are pronounced, with eastern coastal areas showing more advanced policies due to greater technical and financial resources. The surge in medical waste, particularly during the COVID-19 pandemic, underscores the need for enhanced regulatory guidance. Non-incineration technologies are gaining traction for their environmental and cost benefits, and facility coverage has improved but remains uneven. The study proposes five policy principles to foster technological innovation and industrial upgrading, ensuring safe medical waste management and environmental protection.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507027
Ammonia nitrogen (NH3-N) is a common water pollutant that can induce eutrophication and threaten aquatic ecosystems and human health. Accurate monitoring is essential for water safety. This study applied a self-developed gas-permeable membrane-based conductivity sensor (GPMCS) for real-time in-situ monitoring of NH3-N in two water bodies. In the Qunying River (surface river water), GPMCS captured concentration fluctuations linked to pump operations and sewage intrusion, with mean inlet and outlet concentrations of 4.67 and 3.42 mg/L, respectively. In Swan Lake (landscape aquaculture water), concentrations reached up to 11.16 mg/L, with site means of 6.42 and 7.04 mg/L, influenced by aquaculture activities, weather, and location. GPMCS results correlated strongly with national standard methods (r1=0.8132, r2=0.7483), confirming accuracy and reliability. Compared to existing techniques, GPMCS offers high selectivity, strong anti-interference, portability, no sample pretreatment, low cost, and environmental friendliness, making it suitable for long-term in-situ monitoring. This technology provides robust support for sustainable water environment management.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024112603
Sulfamethoxazole (SMX) and microplastics (MPs) are ubiquitous co-existing pollutants in aquatic environments. This study investigated the effects of polyethylene (PE), polypropylene (PP), and polystyrene (PS) MPs with varying aging degrees on the photodegradation of SMX. In the absence of MPs, SMX photodegradation was only 28%, while the presence of virgin PE increased it to 34%. Aging PE for 200, 400, and 600 h further enhanced degradation to 46%, 56%, and 77%, respectively. Pseudo-first-order kinetics showed that the rate constant (kobs) increased from 0.066 h−1 to 0.224 h−1 with aged PE. Aged MPs generated more reactive oxygen species (ROS) under irradiation, including hydroxyl radicals (·OH), singlet oxygen (1O2), and superoxide anions (O2·−), as confirmed by radical quenching and EPR analysis. Density functional theory identified the benzene ring, five-membered heterocycle, and sulfonyl group as primary ·OH attack sites. LC-MS analysis revealed degradation products such as p-aminobenzenesulfonamide, indicating both direct and indirect photolysis pathways. This work provides mechanistic insights into antibiotic-MP interactions and informs strategies for managing co-existing pollutants.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024122101
Bicarbonate and carbonate ions (HCO3−/CO3^2−) are ubiquitous in wastewater and readily scavenge strong oxidants, leading to the formation of carbonate radicals (CO3·−) in radical-based advanced oxidation processes. This study investigated the influence of HCO3−/CO3^2− on the degradation kinetics of sulfamethazine (SMR) in a UV/TiO2 system. The presence of HCO3−/CO3^2− enhanced the degradation rate of SMR by sixfold compared to UV/TiO2 alone. Radical quenching experiments identified CO3·− as the primary reactive species responsible for the enhanced degradation, with hydroxyl radicals (·OH) also contributing. To quantitatively delineate the roles of reactive species and account for water matrix effects, a kinetic model was constructed using Kintecus software. The model accurately predicted SMR degradation over time and the contributions of individual radicals, demonstrating good predictive capability. Application of the model to real wastewater predicted that CO3·− is the dominant radical responsible for SMR degradation. These findings highlight the critical role of carbonate radicals in UV/TiO2 processes and provide a robust modeling framework for predicting the fate of pharmaceuticals in carbonate-rich waters.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024120701
Surface waters contain numerous photoactive substances and low molecular weight carboxylic acids (LCAs). Hydroxyl radicals (HO•) can react with LCAs to generate the highly reducing carbon dioxide anion radical (CO2•−). Excited triplet state dissolved organic matter (3DOM*), a common oxidant in surface waters, may also oxidize LCAs to CO2•−, but this pathway remains unexplored. This study simulated sunlight-driven generation of CO2•− via 3DOM* using 4-benzoylbenzoic acid (CBBP) as a 3DOM* precursor and formate (HCOO−) as a model LCA. Metronidazole (MNZ) served as the target pollutant. Comparative degradation experiments in hν, hν/HCOO−, hν/CBBP, and hν/CBBP/HCOO− systems, combined with electron spin resonance spectroscopy and quenching tests, confirmed that CO2•− generated in the hν/CBBP/HCOO− system was the primary reactive species responsible for enhanced MNZ degradation, originating mainly from 3CBBP* oxidizing HCOO−. Under optimized conditions (8 mmol·L−1 HCOO−, 200 μmol·L−1 CBBP, 10 μmol·L−1 MNZ), 98.2% degradation was achieved within 30 min. Degradation efficiency increased with HCOO− concentration and was pH-independent. Cl−, NO3−, CO3^2−, and low concentrations of HCO3− inhibited degradation, while high HCO3− slightly promoted it. Humic acid (HA) inhibited degradation in a concentration-dependent manner. The system also performed well in real water matrices, suggesting potential for treating micropollutants via reductive pathways.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604001
This study systematically investigated the occurrence, spatial distribution, sources, and ecological risks of 160 pesticides in Dianchi Lake, a typical plateau lake impacted by agricultural activities. A total of 37 pesticides were detected in the water, with total concentrations ranging from 64.2 to 1132.8 ng/L (average 610.0 ng/L). Fungicides, including boscalid (BOS), fluopicolide (FPC), and dimethomorph (DMM), were dominant, contributing up to 65.0% of the total concentration. Spatially, the southern lake region exhibited significantly higher concentrations (672.5 ng/L) than the north, attributed to intensive facility agriculture. Highly hydrophobic pesticides, such as penconazole (PEN), showed a tendency to enrich in bottom layers. Source apportionment identified inflowing rivers and wastewater treatment plant effluents as primary input sources, with average concentrations 7 and 9 times higher than lake water, respectively. Ecological risk assessment revealed that pesticides posed the highest risk to algae, followed by daphnia and fish. Prometryn (PMT) was identified as a high-risk factor for algae, while profenofos (PFF) and carbendazim (CBD) posed potential threats to higher trophic levels. These findings provide fundamental data and technical support for understanding pesticide pollution in plateau lake ecosystems.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225188
Driven by the urgent demand for green and low-carbon technologies, the development of high-performance and cost-effective rare-earth free permanent magnets has emerged as a key research focus for sustainable energy and advanced electronic applications. Among various candidates, M-type strontium ferrites have attracted considerable attention due to their excellent thermal stability, high magnetocrystalline anisotropy, and abundant raw material availability. In this study, Sr0.41La0.36Ca0.23Fe11.8Co0.2O19 was selected as the base system, and a series of samples were synthesized via a solid-state reaction combined with high-energy ball milling. The synergistic effects of varying CeO2/La2O3 mass ratios (0:10 to 10:0) and pre-sintering temperatures (1150-1200°C) on the microstructure and magnetic properties were systematically investigated. Microstructural analyses revealed that moderate Ce substitution effectively induced controlled lattice distortion and promoted densification, which inhibited abnormal grain growth and refined the microstructure. Such structural modulation not only enhanced domain wall pinning but also improved magnetocrystalline anisotropy, leading to a remarkable increase in coercivity. Magnetic measurements confirmed that the composition with a CeO2/La2O3 mass ratio of 2:8 and pre-sintered at 1180°C achieved the most balanced magnetic performance, exhibiting enhanced coercivity, sufficient remanence, and stable saturation magnetization. This work provides new insights into the cooperative effects between rare-earth doping ratios and thermal processing parameters, clarifying how lattice defects, grain boundary characteristics, and microstructural evolution collectively govern the magnetic properties of M-type ferrites. The findings establish a practical strategy for tailoring the microstructure-property relationship in rare-earth free permanent magnets, opening an optimized processing window for scalable fabrication of environmentally friendly, high-performance ferrite materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3930-3
Methylammonium lead tribromide (MAPbBr3) single crystals (SCs) are promising for room-temperature gamma-ray and X-ray detection, but scaling their size often compromises crystal quality. Here, we report a strategic precursor stoichiometry engineering approach to grow inch-sized, high-quality MAPbBr3 SCs via a constant-temperature evaporation method. We show that constructing a robust electrical double layer through organic cation modulation effectively stabilizes the colloidal precursor. This is achieved by synergistically suppressing MA+ deprotonation while promoting MA+ adsorption as counterions on the [PbBrn]2−n complexes, which collectively strengthens interparticle repulsion and raises the nucleation barrier. This multifaceted approach yields MAPbBr3 SCs with lateral dimensions up to 2 inches and an exceptional X-ray diffraction rocking curve full width at half maximum (FWHM) of 0.0093° at the (002) face. Consequently, the SCs enable spectroscopic-grade gamma-ray detection, achieving energy resolutions (ER) of 8.4% for the 57Co source (122 keV) and 11.1% for the 137Cs source (662 keV), along with a high X-ray sensitivity of 1.65 × 10^4 μC Gy−1 cm−2. This work paves the way for the practical application of MAPbBr3 SCs in high-performance gamma-ray and X-ray detection.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3779-1
Comprehensive mechanical properties, including hardness (H), elastic modulus (E), fracture toughness (KC), and wear resistance, are essential for oxide ceramics used in demanding environments. This work employs nanoindentation to evaluate these properties for RE3TaO7 (RE=La, Sm, Eu, Gd, Dy, Lu) and identifies the optimal calculation method for KC in brittle oxide ceramics. The ratio of indentation crack length to half-diagonal (l/α) is a key parameter: Eq. (3) is suitable when l/α < 1, while Eq. (4) applies when l/α > 1. The indentation energy method is invalid for brittle ceramics due to crack formation at high loads. RE3TaO7 oxides exhibit H of 5.8–14.9 GPa, E of 127.5–247.8 GPa, and KC of 1.0–2.0 MPa·m1/2, surpassing RE2Zr2O7 (KC 1.0–1.5 MPa·m1/2). Wear resistance, indicated by MDP, ranges from 0.55 to 0.67, outperforming RE2Zr2O7. The superior fracture toughness is attributed to weberite structure with crack deflection and tortuous propagation, contrasted with pyrochlore's straight cracks. These findings provide accurate nanoindentation-based methods for assessing mechanical properties of brittle oxide ceramics, facilitating material discovery and optimization for thermal barrier coatings and other high-temperature applications.
Environmental Chemistry•2026•DOI: 10.0000/202605-2
Surface sediment samples were collected from 28 stations in the intertidal zones of Xiangshan Harbor, Sanmen Bay, and the southern coast of Hangzhou Bay, major fishery waters in Ningbo, to assess heavy metal pollution and ecological risk. Concentrations of Cu, Pb, Zn, Cd, Cr, Hg, and As were determined. Results showed that Cu and Cr were the primary超标 factors, with mean concentrations exceeding the Class I standard (GB 18668-2002) by factors of 1.03 and 1.1, respectively, in Xiangshan Harbor; in Sanmen Bay, Cr exceeded by 1.1 times, while Cu did not. In Hangzhou Bay, Cu and Cr were elevated but below the standard. Coefficients of variation (CV) for five metals in Hangzhou Bay exceeded 30%, indicating strong external influence. In Xiangshan Harbor, As showed strong variation, and in Sanmen Bay, Hg showed strong variation. The potential ecological risk indices (RI) were 38.5, 36.7, and 31.1 for Xiangshan Harbor, Sanmen Bay, and Hangzhou Bay, respectively, all indicating low ecological risk. Spatial distribution in Hangzhou Bay revealed a decreasing gradient from a chemical industrial park, suggesting industrial discharge as a primary source. The study provides baseline data for environmental management and recommends source control and bioremediation in high-risk areas.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605006
Military ecological and environmental protection is a critical component of national ecological and environmental protection. Military activities and operations, such as training and drills, weapons and equipment testing, and combat, are prone to triggering a series of ecological and environmental problems, including greenhouse gas emissions, deterioration of water resources and water quality, vegetation destruction, land degradation, and typical physical and chemical pollution, which have attracted extensive global attention. This study systematically analyzed the eco-environmental impacts of military activities on multiple environmental media (atmosphere, water, and soil) across different periods, and conducted pollution source tracing in multi-media and representative regions. It reviewed the current status of ecological and environmental protection technologies for the three major environmental media, i.e., atmosphere, water, and soil, and summarized the characteristics and constraints of military ecological and environmental research. Finally, it proposed the research trends and key development directions for military ecological and environmental protection from four dimensions: data monitoring and sharing, research and development of in-situ remediation technologies for military-civilian integrated combined pollution, green construction practices for military facilities, and optimization of management systems.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605017
In response to the escalating challenge of industrial dust pollution, this study introduces a magnetic field-enhanced electrostatic dust collector integrated with wire mesh filtration. By applying an external magnetic field, the conventional electrostatic precipitation process is physically intensified. Systematic experiments compared discharge characteristics and dust removal efficiency with and without magnetic field intervention. The influence of wire mesh structural parameters was investigated, focusing on pore size (1, 2, 3 mm), number of stacked layers (1, 2, 3), and surface composite filtration materials (polyethylene filter mesh, polyamide mesh). Additionally, the effects of airflow velocity (1–5 m/s), inlet flow direction (forward/reverse), and dust type (fly ash, coal combustion dust, cement ash) on removal efficiency were tested. Results demonstrate that the optimized magnetic field-wire mesh coupling significantly enhances the charging and capture of fine dust. Specifically, smaller mesh apertures improve efficiency, with 1 mm yielding the best performance. Increasing the number of mesh layers effectively enhances efficiency at discharge voltages of 13–17 kV. Coating the mesh with either polyethylene or polyamide further improves efficiency, with negligible difference between the two materials. Reverse airflow direction results in lower effective gas velocity due to opposing gravity and drag forces, yet the combined magnetic and electric fields stabilize particle charging and enhance trajectory deflection, leading to improved overall performance. Dust resistivity is a critical factor: lower resistivity facilitates charging, while higher resistivity induces back corona, reducing efficiency. Magnetic field enhancement mitigates back corona and improves removal, particularly for high-resistivity cement ash. These findings offer a viable technical solution for efficient industrial flue gas dedusting.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225264
The high cost of high-purity hydrogen necessitates the utilization of low-cost industrial by-product hydrogen as an alternative gas source to reduce hydrogen storage costs. Industrial by-product hydrogen typically contains impurities such as H2S and CO, yet the poisoning mechanisms of these gases on superlattice hydrogen storage alloys during hydrogen absorption/desorption remain poorly understood. This study systematically investigates the poisoning effects and regeneration behavior of La0.65Mg1.32Ca1.03Ni9Y0.17 superlattice hydrogen storage alloy in atmospheres containing 10^-3 H2S and CO. The experimental protocol comprised 10 poisoning cycles followed by 1 regeneration, repeated to total 20 poisoning cycles and 2 pure hydrogen regenerations. Results show that in pure hydrogen, the alloy's hydrogen storage capacity gradually decreases after 22 cycles but is effectively restored after dehydrogenation at 473 K. In the presence of impurity gases, the hydrogen storage capacity retention rates after 10 poisoning cycles with H2S and CO are 3.56% and 2.71%, respectively; after 20 cycles, these decrease to 3.68% and 1.73%, respectively. After dehydrogenation at 473 K, retention rates recover to 40.35% and 98.27%, respectively. This indicates that poisoning severity follows the order CO > H2S, while regeneration difficulty follows H2S > CO. X-ray diffraction analysis reveals that after poisoning, the main phase transforms from AB3 to AB3H, but reverts to AB3 after high-temperature dehydrogenation. X-ray photoelectron spectroscopy shows that after H2S poisoning, CaS and CaSO4 form on the alloy surface, indicating irreversible chemical adsorption. In contrast, after CO poisoning, no new substances are detected, indicating reversible adsorption. This study clarifies the differentiated poisoning mechanisms of impurity gases and provides theoretical support for the application of rare-earth superlattice hydrogen storage alloys in complex atmospheres.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3913-3
The depletion of fossil resources necessitates the development of sustainable polymers from renewable feedstocks. Eugenol, a biomass-derived compound, serves as an ideal platform molecule due to its reactive allyl group and rigid aromatic scaffold. This study introduces a chiral Pd/Wei-Phos catalytic system for the helix-selective living polymerization of achiral eugenol-based diazo acetate monomer, delivering helical polycarbenes in high yield with controlled molecular weight (Mn), narrow dispersity (Đ), and optical activity. Post-polymerization functionalization was achieved via thiol-ene click chemistry, enabling efficient incorporation of diverse functional groups (carboxyl, ester, ketone, and diol) with high conversion (>99%). Additionally, an innovative pentaerythritol tetra(3-mercaptopropionic acid) (PETMP) cross-linked eugenol-based polycarbene system has been constructed. By controlling the polymerization degree and cross-linking density of the polymer, the mechanical properties (tensile strength can reach 15 MPa) of the cross-linked materials can be easily adjusted. Moreover, the cross-linked films exhibit excellent chiral separation ability and can be used for the enantioseparation of enantiomers of various chiral alcohols, with enantiomeric excess (ee) up to 96%. This not only contributes an innovative strategy for designing high-performance functional materials, but also provides inspiring ideas for the development of biomass-derived high-performance materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3936-8
The precise separation of enantiomers is essential for developing effective chiral drugs, yet conventional membranes are constrained by the ubiquitous selectivity-permeability trade-off and low flux, limiting scalable production of single-enantiomer drugs. Herein, we present a cascade reaction strategy integrating Sonogashira-Hagihara coupling and Friedel-Crafts alkylation to fabricate porous conjugated microporous polymer membranes (CCMP-M P1–4/SiO2). This approach enhances specific surface area by 400-fold compared to the product from the Sonogashira-Hagihara coupling reaction alone, creating interconnected porous networks that facilitate mass transport. This hypothesis was confirmed by pore-size gradient experiments, which revealed a critical size-matching effect: matched molecular dimensions enable high-speed mass transfer with 97% enantioselectivity, while mismatch reduces selectivity to 9%, as visualized in a separation performance matrix across four chiral molecules. Precise chiral recognition is programmable via absolute configuration control of chiral monomers, with the mechanism of “preferential adsorption–interfacial enrichment–promoted diffusion” confirmed by static adsorption and density functional theory calculations. This strategy achieves breakthrough performance: Naproxen flux reaches 37 mmol m−2 h−1, surpassing literature values, and enables membrane-based separation of Raceanisodamine (89% selectivity of 6S, 2′S and 6R, 2′R-isomer after cascade enrichment) for the first time. This work provides a new paradigm for designing high-performance chiral separation membranes, facilitating scalable and sustainable production of single-enantiomer drugs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3933-9
The global cold chain consumes vast amounts of energy and emits greenhouse gases, while many regions lack proper refrigeration. To address this, we developed a dual-layer electrospun membrane (PZ-PML) for energy-free fruit preservation. The top PVDF-HFP/ZIF-8 layer offers 97.64% solar reflectance and 92.5% mid-infrared emissivity, providing 70 W/m2 radiative cooling. The bottom PAN/MIL-101/LiCl layer, with 2.18 g/g water uptake at 80% RH, delivers ~156 W/m2 evaporative cooling, lowering surface temperature by 6.1 °C under ~400 W/m2 irradiation. The membrane also shows ≥99% antibacterial efficiency against E. coli and S. aureus. Applied to strawberries, it reduced dehydration to 20.2% after 9 days, compared to 68.2% and 74.4% in controls. Additionally, it demonstrates durability, superhydrophobicity, and UV stability. This scalable solution offers energy-free fruit cooling, reducing postharvest losses while maintaining quality and safety.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3763-9
Developing near-infrared (NIR) organic phototheranostic agents with aggregation-induced emission (AIE) is crucial for precise diagnosis and synchronous cancer treatment by regulating excited-state energy dissipation. However, the distorted molecular configuration of AIE systems poses a challenge to achieving both high fluorescence quantum yield (QY) and large molar extinction coefficient (ε). Herein, a series of donor-acceptor-donor (D-A-D) AIE small molecules with bright NIR emission and high photothermal conversion efficiency (PCE) were developed through an acceptor planarization and donor rotation molecular engineering strategy. Upon encapsulation into water-dispersible nanoparticles (NPs), SVD NPs exhibited strong molar absorptivity (ε = 3.92 × 10^4 M^-1 cm^-1), high QY of 4%, and improved photothermal performance (PCE × ε = 2.2 × 10^4), enabling effective NIR fluorescence imaging-guided phototherapy for successful ablation of subcutaneous tumors. This study offers valuable insights into the simultaneous enhancement of bright NIR luminescence and exceptional photothermal performance in AIE phototheranostic agents, propelling advancements in tumor diagnosis and treatment.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506080
Thallium (Tl) is a highly toxic trace heavy metal, posing severe risks to human health and the environment. Cement kilns are significant sources of gaseous Tl emissions, with concentrations up to 25 μg·m−3, which can poison SCR catalysts and cause environmental contamination. This study developed MnO2/γ-Al2O3 adsorbents via wet impregnation with varying Mn loadings (0–15 wt%) to capture gaseous TlCl. Fixed-bed adsorption experiments at 300 °C with 20% O2 revealed that capture capacity initially increased with Mn loading, peaking at 10 wt% MnO2 (10MnO2/γ-Al2O3), then declined at 15 wt%. Characterization (XRD, O2-TPD, H2-TPR) indicated that Mn species enhanced redox properties, oxidizing Tl+ to Tl3+ and immobilizing it on the surface. DFT calculations showed that TlCl forms stronger Al–Cl and Mn–Cl bonds on MnO2/γ-Al2O3 than on γ-Al2O3, with higher adsorption energy and greater charge transfer, corroborating experimental results. The optimal adsorbent, 10MnO2/γ-Al2O3, demonstrates superior Tl capture performance, offering a promising upstream solution for protecting SCR catalysts and reducing atmospheric Tl emissions from cement kilns.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025120801
The interaction between microplastic-derived dissolved organic matter (PSDOM) and iron oxides in soil environments can modulate its photosensitization effects, yet the underlying mechanisms remain elusive. This study investigated the influence of hematite with distinct morphologies—flake-shaped (HNPs) and cubic (HNCs)—on the photosensitization of polystyrene-derived dissolved organic matter (PSDOM). Under 500 W mercury lamp irradiation, both hematite morphologies promoted PSDOM degradation, with HNCs exhibiting superior performance: total organic carbon (TOC) decreased from 18.4 mg·L−1 to 12.3 mg·L−1 within 90 min, compared to 13.3 mg·L−1 for HNPs. Three-dimensional fluorescence spectroscopy indicated that hematite alters the humification process, thereby modifying photosensitization. Electron paramagnetic resonance (EPR) spectroscopy identified the generation of singlet oxygen (1O2), hydroxyl radicals (·OH), and carbon-centered radicals (CH3C(=O)OO·). HNCs significantly enhanced 1O2 production, while HNPs favored ·OH generation; both inhibited CH3C(=O)OO· formation. Quantitative analysis via high-performance liquid chromatography revealed that the steady-state concentration of 1O2 was highest with HNCs, reaching 2.80 times that of the PSDOM control, whereas ·OH concentration peaked with HNPs at 1.98 times the control. Notably, the steady-state concentration of 1O2 was approximately three orders of magnitude higher than that of ·OH. These findings elucidate the morphology-dependent role of hematite in PSDOM photosensitization, providing mechanistic insights into the environmental fate of microplastic-derived organic matter in complex soil systems.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025031001
The diffusive gradients in thin-films (DGT) technique has emerged as a promising tool for assessing the desorption kinetics and bioavailability of organic contaminants in soil. This study compared DGT, soil solution, and organic solvent extraction methods for evaluating the bioavailability of four sulfonamide antibiotics (SAs) in soil using pot experiments with Brassica rapa subsp. chinensis and Lactuca sativa. Results demonstrated that plant uptake of SAs depended on compound properties and plant species, with roots as the primary accumulation site. DGT-measured concentrations (CDGT) showed significant linear correlations with SA concentrations in both roots and leaves, and effective concentrations (CE) were positively correlated with plant tissue levels (P < 0.05). The soil solution method also showed predictive ability but with lower stability. The mass of SAs adsorbed by DGT increased non-linearly with deployment time, indicating that solid-phase resupply sustained long-term DGT uptake. DIFS model-derived soil-water partition coefficients (Kdl) ranged from 0.23 to 1.25 mL·g−1, with higher Kdl values corresponding to greater bioavailability. Response times (Tc) ranged from 2307 to 7523 seconds, with sulfamethoxazole (SMZ) exhibiting the highest Tc, indicating its release was most constrained. Meta-analysis of desorption parameters for other organic contaminants revealed that soil pH and particle size were key determinants of Kdl, while molecular volume and hydrophobicity influenced resupply rates. This study confirms the reliability of DGT for assessing antibiotic bioavailability in soil and provides fundamental data on their migration and fate.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3864-4
Organic room temperature phosphorescence (RTP) materials, particularly those emitting in the near-infrared (NIR) region, hold great promise for bioimaging due to their deep-tissue penetration and minimal autofluorescence interference. However, achieving efficient NIR RTP with long lifetimes remains challenging due to inefficient triplet exciton utilization. Herein, we propose a dark triplet state activation strategy to achieve efficient NIR RTP by leveraging host–guest energy transfer. Using benzophenone derivatives (BP, OBP, MBP, PBP) as rigid host matrices with high intersystem crossing (ISC) efficiency and an NIR fluorophore (MPTCF) as the guest, we achieve efficient Dexter-type triplet-triplet energy transfer (TTET) that converts non-emissive host triplets into guest-centered NIR phosphorescence. Systematic optimization of the host–guest system has shown that PBP/MPTCF exhibits exceptional performance, including long phosphorescence centered at 705 nm, an ultralong phosphorescence lifetime (210.3 ms), and high ISC efficiency (44.4%). When fabricated into nanoparticles (NPs), PBP/MPTCF exhibits superior performance, featuring prolonged phosphorescence signals (>120 s), deep tissue penetration capability (>2 mm), and excellent biocompatibility (cell viability >95% at 300 μM). In addition, this system enables high-contrast subcutaneous imaging with excellent dispersibility and stable in vivo imaging capability. More importantly, PBP/MPTCF NPs demonstrate precise lymph node mapping through time-gated phosphorescence imaging and efficient tumor visualization within 4 h post-injection with a high tumor-to-liver ratio of 2.8. The successful activation of dark triplet states through this host–guest approach provides a general design principle for developing high-performance NIR RTP materials, while the demonstrated biomedical applications highlight their significant potential for advanced bioimaging and precision diagnostics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3842-8
The metal-support interactions (MSIs) play a significant role in regulating the electronic structure of metal species on oxide; however, they are often overlooked on carbon-based supports. In this work, hollow nitrogen-doped carbon (H-NC) supported Ru nanoparticles catalyst (Ru/H-NC) was prepared by a solvothermal method using H-NC as support and RuCl3 as precursor. Subsequently, Ru/H-NC was annealed at different temperatures (Ru/H-NC t °C) to adjust the effect of MSIs between H-NC support and Ru nanoparticles. The X-ray photoelectron spectroscopy results showed that the MSIs between Ru species and H-NC support increased with the increase of temperature, and more electrons were transferred from Ru species to H-NC support, thus regulating the valence state of Ru. In hydrogen evolution reaction (HER), the as-synthesized Ru/H-NC 300 °C merely requires overpotential of 35.45 mV to achieve 10 mA/cm2 at low Ru mass loading of 24.03 μg/cm2 on the glassy carbon electrode. The cyclic voltammetry test revealed that the electrochemically active surface area increased first and then decreased with the increasing MSIs. Moreover, electrochemical impedance spectroscopy results showed that HER kinetics of Ru/H-NC t °C catalysts increased first and then decreased with the MSIs enhancement. The density functional theory calculations confirmed that the MSIs effectively optimize the adsorption strength of the key intermediates (H*, HO*) on Ru clusters, and thus greatly improve the catalytic performance of Ru/H-NC in HER.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3769-2
Proton exchange membrane water electrolyzers (PEMWEs) are pivotal for sustainable hydrogen production, yet the corrosion-induced TiOx on porous transport layers (PTLs) introduces Schottky contact barriers and pinch-off effects, severely impeding charge transfer and efficiency. Here, a cost-effective MoIrOx coating via spray deposition and thermal treatment on Ti felts is proposed. The coating forms a conductive interlayer that establishes a Schottky barrier staircase, reducing the effective electron transfer barrier and isolating TiOx from the ionomer to mitigate the pinch-off effect. The optimal PTL achieves a current density of 3.27 A cm−2 at 2 V, surpassing uncoated Ti felts by 59.5%. The MoIrOx interlayer suppresses localized electron accumulation at the interface, enabling stable operation with ultra-low catalyst loadings by preventing direct ionomer-TiOx contact. This work demonstrates a scalable strategy to enhance PEMWE efficiency and durability while minimizing precious metal reliance, offering critical insights into interface engineering for electrolyzers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3925-5
Capacitive pressure sensors have garnered significant attention in electronic skin, human-machine interaction, health monitoring, and medical devices due to their remarkable properties like highly sensitive pressure perception, good repeatability, and rapid response capabilities. However, manufacturing capacitive pressure sensors that simultaneously achieve a broad linear detection range and high sensitivity remains a significant challenge. Herein, a novel hierarchically interlocked capacitive pressure sensor (HI-CPS) was designed by integrating a stretchable polyethylene glycol (PEG)-based nanofilm dielectric layer with hierarchically interlocked microstructures, demonstrating excellent linearity and high sensitivity over a wide sensing range. HI-CPS based on a one-layer nanofilm exhibits ultrahigh sensitivity (9.40 kPa−1) and an ultralow detection limit (0.1 Pa). When the dielectric layer comprises two layers of stacked nanofilms, the sensor not only maintains high sensitivity (3.17 kPa−1) but also achieves excellent linearity (R2 = 0.999) over a broad working range (<5 kPa), along with remarkable stability even after 10,000 cycles. Benefitting from the outstanding comprehensive performance, HI-CPS has been proven to be successfully implemented in monitoring various human biological signals, sign language recognition, and basketball shooting gesture correction. This strategy of assembling the tailored nanofilm with structural engineering has significant potential application in building high-performance pressure detection and recognition devices.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509036
Algal-derived phosphorus (P) constitutes a significant fraction in eutrophic lakes, with particulate phosphorus (PP) serving as both a major internal P reservoir and a potential target for P resource recovery. This study proposed a chitosan-coupled electroflotation (CEF) technology for efficient enrichment and recovery of algal-derived P from high-algal water. Using Taihu Lake algae-laden water as the test medium, the effects of chitosan dosage and voltage on the enrichment of different P fractions were systematically evaluated. Results showed that the optimal P enrichment was achieved at a chitosan dosage of 15 mg·L−1, and higher voltages further enhanced the enrichment efficiency. Under optimal conditions, PP accounted for 83.57% of the enriched P, indicating a strong capability for particulate P capture. The mechanism involved chitosan-induced flocculation via charge neutralization and sweep flocculation, while higher voltages increased the positive charge density of chitosan molecules, enhancing charge neutralization and electroflotation. In P release experiments, open conditions significantly promoted the transformation of PP to dissolved P, whereas closed conditions inhibited this process. Additionally, chitosan's antibacterial action and physical retention effectively limited P release. Compared with conventional metal salt coagulants, this method avoids metal ion residues, offering high environmental safety and providing a green and feasible approach for the harmless disposal and resource utilization of algal-derived P in eutrophic lakes.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511020
With the increasing number of oil pipelines crossing rivers, the potential risks of oil leakage and surface spreading to river ecosystems and water environments are becoming more severe. Scenario-based simulation of oil spill diffusion is a prerequisite for effective interception point placement and leakage risk prevention. Numerous factors influence oil spill diffusion, including environmental conditions, river hydrology, and accessibility of emergency resources. This study integrates these factors and multiple dynamic processes to design eight typical scenarios for oil spill diffusion simulation, considering emergency resource locations, river hydrological regimes, and leakage modes. A case study is conducted on an oil pipeline crossing a river in northwest China. Results indicate that the diffusion distance and affected area are primarily controlled by water conditions and emergency resource accessibility. In emergency management, the efficiency of maintenance and repair resources during high-water months should be prioritized. Mechanistically, external forces such as hydraulic and wind forces have a greater influence on diffusion distance, surpassing internal forces like gravity, viscosity, and surface tension within a short time. For river crossings near emergency resources, internal force effects should be considered in oil spill diffusion simulations. When emergency resource arrival times are long, the diffusion distance based on Fay's theory is relatively small and can be neglected in engineering practice. This study provides a computational basis and methodological reference for risk assessment and emergency response to potential oil spills from pipelines crossing rivers, enhancing the scientific and effective nature of risk prevention and emergency handling.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60678-0
Improper disposal of plastic waste represents both the loss of valuable resources and significant environmental threat. This study investigates the thermal liquefaction of high-density polyethylene (HDPE) using low-pressure superheated methanol. It systematically evaluates the effects of reaction temperature and the ratio of reactant to methanol on liquefaction efficiency and product characteristics. Results indicate that complete conversion of HDPE can be achieved in low-pressure superheated methanol (<0.5 MPa) at a minimum external heating temperature of 260 °C. Under this condition, oil yield reached 77.1% with alkanes comprising 62.3% of the product alongside minor oxygenated compounds. As temperature increased, the average carbon number of hydrocarbons gradually decreased. Below 260 °C, HDPE conversion decreased significantly, and products were primarily waxy. At 290 °C, the proportion of gasoline-like fractions (C6–C12) increased markedly from 16.6% to 80.9%. Furthermore, reactant ratio plays a critical regulatory role; extremes in ratio—either too high or too low—diminish heat transfer efficiency and reduce conversion. Mechanistically, liquefaction primarily involved cleavage of secondary C−C bonds, where resulting oligomers further cracked into free radicals to form diverse hydrocarbons through secondary reactions. This work demonstrates that low-pressure superheated methanol liquefaction is a mild, efficient, and pretreatment-free method to upcycle polyethylene into valuable fuels. Optimizing these process parameters can pave the way for industrial application, aiding in both plastic pollution management and sustainable resource recovery.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0034
Catalytic cracking of gasoline and diesel to light olefins is a pivotal route for high-value utilization of surplus fuels, typically employing zeolite catalysts. This study systematically investigates the effects of zeolite type and acidic properties on the catalytic cracking of dodecane, a diesel model compound, using SAPO-34, ZSM-5 with SiO2/Al2O3 ratios of 38, 85, and 200, and USY. Catalysts were characterized by XRD, SEM, N2 physisorption, NH3-TPD, and pyridine-FTIR, and evaluated in a fixed-bed reactor. Results demonstrate that zeolite type is the primary determinant of conversion and product distribution. SAPO-34, with 0.38 nm pores, achieved only 24.33% conversion and negligible BTX yield, with severe external coking. ZSM-5-38 and USY, with larger pores, achieved near-complete conversion; however, ZSM-5-38, possessing moderate acidity, yielded the highest light olefins (18.40%) and minimal coke (0.18%), while USY, with higher acidity, promoted hydrogen transfer and coking (12.90% coke). Within ZSM-5 series, lower acid site density (ZSM-5-200) proved optimal, achieving 97.79% conversion and a total light olefin yield of 41.93% (ethylene 11.11%, propylene 20.33%, butenes 10.49%) with low coke (0.43%). The study proposes reaction pathways and regulatory mechanisms, highlighting that zeolite type and acidity govern the relative rates of cracking, hydrogen transfer, oligomerization, aromatization, and coking, thereby dictating performance. These findings provide a rational basis for optimizing zeolite catalysts in commercial gasoline/diesel cracking processes.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026030202
High nitrogen (N) inputs, low N use efficiency, and substantial greenhouse gas emissions constrain sustainable double-cropping rice production in the middle and lower reaches of the Yangtze River. To evaluate whether humic acid urea (HAU) can reconcile yield stability with N reduction and carbon mitigation, a field experiment was conducted in a double-cropping rice system. Five treatments were established: conventional urea at the recommended N rate (U), HAU at the recommended N rate (HAU), conventional urea with a 20% reduction in N input (U-20), HAU with a 20% reduction in N input (HAU-20), and a no-N control (CK). Rice yield, N uptake and utilization, and the full life-cycle carbon footprint were quantified. Results showed that HAU significantly increased double-cropping rice yield by 6.46% (early rice) and 8.76% (late rice) compared to U (P < 0.05). HAU-20 maintained yield equivalent to U, while U-20 significantly reduced yield. HAU-20 significantly improved nitrogen fertilizer apparent utilization rate, agronomic efficiency, and partial factor productivity. Specifically, apparent utilization rate increased by 9.24 percentage points (early rice) and 7.80 percentage points (late rice); agronomic efficiency increased by 18.51% and 26.69%, and partial factor productivity by 22.79% and 25.58% for early and late rice, respectively (P < 0.05). Life-cycle carbon footprint was significantly reduced by 26.25% (early rice) and 40.38% (late rice) under HAU-20 compared to U, with per-unit product carbon footprint reduced by 0.22 t CO2-eq·t−1 and 0.86 t CO2-eq·t−1, respectively. The reduction was primarily attributed to decreased CH4 and N2O emissions: early rice CH4 and N2O cumulative emissions decreased by 28.92% and 44.34%, and late rice by 44.46% and 63.85% (P < 0.05). In conclusion, HAU with 20% N reduction sustains yield, enhances N use efficiency, and significantly lowers carbon footprint, offering a viable path for green and low-carbon double-cropping rice production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3981-7
Solution-processable quasi-2D perovskites are promising laser gain media due to their high exciton binding energy and improved stability relative to 3D counterparts. However, conventional synthesis yields mixed n-value phases, introducing interfacial defects and energetic disorder that impede charge injection into desired emission centers. Here, we report the first demonstration of stimulated emission from a phase-pure quasi-2D perovskite (n=8) achieved via a solvent-sieving method for selective phase removal. This dynamic purification yields near-unity phase purity (99.85%) with no detectable low-n phases, as confirmed by X-ray diffraction and ultraviolet-visible spectroscopy. The phase-pure film exhibits a narrower and more intense (001) diffraction peak (FWHM 0.16 nm, intensity 16,129) compared to pristine films (FWHM 0.22 nm, intensity 3,304), indicating enhanced crystallinity and increased grain size. Time-resolved photoluminescence reveals a prolonged carrier lifetime of 6.98 ns, suggesting reduced trap density. Atomic force microscopy shows a nearly pinhole-free surface with root mean square roughness of 1.18 nm. Consequently, the amplified spontaneous emission threshold is reduced to 13.82 μJ cm−2, a 12.5% improvement over conventional mixed-phase films (15.8 μJ cm−2). This work provides an efficient route to pure-phase quasi-2D perovskites for low-threshold lasers.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607023
The rapid population growth and accelerating urban development have made the comprehensive utilization of municipal sludge (MS) an urgent challenge. MS contains substantial organic matter and essential nutrients for crop growth, making it a promising soil amendment for the ecological restoration of mine waste rock. However, research evaluating the impact of MS application on soil health and ecological safety from a soil microbiology perspective remains understudied. Therefore, this study investigated the effects of MS and composted municipal sludge (CMS) on the ecological restoration of mine waste rock soil through pot experiments. High-throughput sequencing technology was employed to analyze changes in soil microbial community structure and diversity. Finally, network analysis and correlation heatmaps were utilized to elucidate the microbial driving mechanisms. The results indicated that after MS and CMS application, organic matter content increased from 20.38 g/kg (Level 3) to 38.52 g/kg (Level 2). The levels of available nitrogen, phosphorus, and potassium rose from Level 4, 6, 2, to Level 1, 4, 1, respectively. Fresh weight, aboveground height, root length, and stem diameter of ryegrass all increased significantly. Venn diagram and heatmap analyses indicated that lower application rates (<1.5 kg/m²) enhanced microbial community richness and diversity. This study confirms municipal sludge as an effective amendment for mine waste rock soil. It is recommended to limit application rates below 1.5 kg/m² in practical mine ecological restoration projects, with particular attention to long-term dynamics of heavy metals and salinity to ensure safe and sustainable land reuse.
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4011-7
Biomass-derived room-temperature phosphorescence (RTP) carbon dots (CDs) hold great promise for anti-counterfeiting and information encryption. However, achieving solid-state matrix-free long-lived CDs with time-dependent phosphorescence colors (TDPC) remains challenging due to aggregation-induced quenching. Here, solid-state matrix-free RTP phosphorus-doped CDs (P-CDs) are developed via one-step hydrothermal treatment of feather powder and phytic acid. The resulting P-CDs powder exhibits bright blue fluorescence under UV illumination and unprecedented TDPC shifting from yellow to green after UV removal, with afterglow lasting 12 s (average lifetime 1.15 s). Enhanced RTP is attributed to increased triplet-state excitons via spin-orbit coupling induced by P-doping. A dual-mode luminescent ink formulated by combining P-CDs with polyvinyl alcohol (PVA) is successfully applied to commercial A4 paper, showing pronounced TDPC (light-yellow to green) with improved RTP lifetime (1.31 s) after ceasing UV irradiation. The P-CDs/PVA ink demonstrates excellent anti-counterfeiting and information encryption capabilities, outstanding luminescent durability, and broad practicability on cellulosic substrates including fabric and paper. These findings provide a strategy for exploiting matrix-free solid-state RTP P-CDs with distinctive TDPC properties and offer a sustainable route to converting feather wastes into high-value materials.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512014
Mining activities cause severe soil degradation and microbial diversity loss, impeding ecological restoration. This study evaluated the effects of a novel soil amendment, microporous bio-gravel (MBG), on bacterial and fungal community structure and function in degraded soil from the Baiyinhua open-pit mine, Inner Mongolia. A pot experiment with four MBG-to-soil volume ratios (CK, L=1:3, M=1:2, H=1:1) was conducted, with a simplified plant community and uniform fertilization. After 180 days, soil samples were analyzed via high-throughput sequencing and bioinformatics. Results showed that the medium ratio (M) significantly increased fungal Shannon index and evenness, while the high ratio (H) negatively affected bacterial communities. At phylum and genus levels, MBG promoted enrichment of Cyanobacteria and specific functional groups (e.g., nitrogen-fixing bacteria, Bacillus). Co-occurrence network analysis revealed peak complexity, modularity, and average degree in bacterial and fungal networks under the M treatment. Functional prediction indicated significant enrichment of pathways related to lipopolysaccharide biosynthesis, nitrotoluene degradation, and plant-pathogen interactions, alongside increased abundance of saprotrophic and ectomycorrhizal fungi. Mantel and VPA analyses showed that MBG indirectly regulated microbial community structure by improving soil physicochemical properties and plant traits, with stronger effects on fungi than bacteria. In conclusion, MBG optimizes the soil microhabitat and plant-soil-microbe interactions, modulating microbial diversity, network complexity, and functional potential. The medium ratio (1:2) was most effective, demonstrating potential for ecological restoration of degraded mine soils.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051802
This study investigates the recovery of nitrogen and phosphorus from anaerobic digestion biogas slurry of chicken manure via magnesium-modified zeolite coupled with electrochemical precipitation crystallization. Three types of magnesium-modified zeolites were prepared using alkali activation and magnesium loading to enhance adsorption capacity. A coupled 'magnesium-modified zeolite-electrochemical MAP' reactor was constructed, and key parameters (N/P ratio, pH, current density) were optimized via response surface methodology. The results show that MgCl2-modified zeolite (MgCl2-ZO) exhibited the best coupling precipitation performance. Under optimal conditions (N/P ratio 3.78, pH 8.43, current density 13.11 A·m−2), the removal efficiencies for total nitrogen (TN), total ammonium nitrogen (TAN), total phosphorus (TP), and total phosphate (TPS) reached 54.84%, 62.93%, 82.02%, and 77.72%, respectively. The mechanism involves synergistic adsorption and electrochemical release of Mg2+ from the magnesium electrode, which promotes struvite crystallization. The electrochemical field enhances ion exchange and chemical precipitation on the zeolite surface, facilitating efficient nutrient recovery. This approach offers a promising solution for nutrient management in livestock wastewater.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608007
The Minjiang River Basin, subjected to combined pollution from domestic, agricultural, and industrial sources, has become a typical sensitive area for studying the environmental behavior of emerging contaminants such as antibiotics. This study conducted a cross-year comparative analysis of the composition and concentrations of antibiotics in water samples from nine sampling sites during the dry season in November 2022 and 2024. The findings revealed: 1) After the implementation of the "National Action Plan for Reducing Antimicrobial Use in Livestock", the detection concentrations of tetracycline antibiotics (TCs) decreased (e.g., doxycycline concentrations dropped from 7.75 ng/L to undetectable levels), and the mixed risk quotient (MRQ) across the entire basin transitioned from medium to low risk. However, lincomycin (up to 4.6 ng/L), clarithromycin (1.3 ng/L), and florfenicol (0.6 ng/L) have emerged, indicating an increasing hidden ecological risk from substitution. 2) High-concentration antibiotic zones transferred from urban residential areas in 2022 to intensive aquaculture zones and upstream reservoir areas in 2024. The reduction in dry-season water flow intensified pollutant accumulation, synergistically enhancing the effects of tidal drag. Additionally, the conversion of agricultural land to aquaculture ponds led to increased use of alternative drugs (e.g., sulfamethazine), while policy interventions mitigated the exacerbation of urban antibiotic pollution by construction land. This study elucidates the migration patterns of antibiotic pollution under the synergistic effects of policy regulation and natural processes, emphasizing the need to address hidden risks of substitute drugs and the driving role of land-use changes, providing scientific basis for watershed-scale risk assessment and precise management of emerging pollutants.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608023
Zinc-containing steel dust sludge, a by-product of steelmaking, contains high levels of chlorine (Cl) along with valuable metals such as Fe, Zn, K, and Na. When recycled into the steel production process, Cl accumulates, causing sintering instability and severe corrosion of blast furnace linings. This study investigated water leaching for Cl removal from zinc-containing steel dust sludge. Under optimal conditions (liquid-to-solid ratio 5 mL/g, temperature 70 °C, time 60 min, rotation speed 160 r/min), the Cl leaching rate reached 87%. Furthermore, a three-stage countercurrent water washing process at a liquid-to-solid ratio of 6 mL/g and room temperature for 45 min achieved a Cl leaching rate exceeding 90%. The water washing also reduced the leaching toxicity of metals in the sludge to a certain extent. Characterization via XRD, SEM, FT-IR, and XPS revealed that water washing primarily dissolved soluble chlorides (NaCl, KCl, etc.), increasing the specific surface area from 2.71 to 10.11 m²/g and average pore size from 12.83 to 16.29 nm. These findings provide theoretical and technical support for efficient Cl removal from zinc-containing steel dust sludge, facilitating its safe resource utilization.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3969-9
Phosphor-in-glass (PiG) materials are promising color converters for high-power laser illumination, yet suppressing interfacial reactions between phosphor and glass matrix at elevated sintering temperatures remains a critical challenge. Here, we report a Y3Al5O12:Ce3+ (YAG:Ce) phosphor-in-silica glass (PiSG) with high SiO2 content (>85 wt%) fabricated via a Cs2CO3 flux. Incorporation of Cs2O significantly inhibits SiO2-YAG:Ce reactions, preserving internal quantum efficiency (IQE) at 97.7% of pure YAG:Ce, and achieving 88.3% IQE even after calcination at 1400°C for 2 h. In contrast, smaller alkali ions (Li+, Na+) accelerate YAG:Ce decomposition. Mechanistic studies reveal that Cs+ with large ionic radius and weak interaction with oxygen suppresses non-bridging oxygen (NBO) formation, promoting a complete silica network that limits alkali ion diffusion. Leveraging the mixed alkali effect (10% Li2O + 5% Cs2O), the PiSG exhibits enhanced hydrothermal stability, withstanding 200°C treatment for 10 h. A PiG film-sapphire device delivers 3080 lm luminous flux and 213 lm W−1 efficiency under blue laser excitation. These findings establish YAG:Ce-PiSG as a highly promising color-conversion material for high-performance laser illumination.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608028
Ship loading operations emit multi-component volatile organic compounds (VOCs) with complex composition, including methanol, dichloromethane, trichloroethylene, p-xylene, acrylonitrile, benzene, and acetonitrile. Under high-humidity marine conditions, treatment is challenging. This study systematically screened three molecular sieves with distinct pore sizes—ZSM-5, β-type, and HY—for selective adsorption of these seven VOCs at moisture contents of 0%, 2.5%, and 5%. Competitive adsorption in acrylonitrile/p-xylene mixtures was examined on ZSM-5-all-silica and HY-100. Results showed: (1) saturated adsorption capacity decreased with increasing moisture content, confirming water-VOC competition; higher Si/Al ratios enhanced hydrophobicity, with all-silica ZSM-5 exhibiting superior water resistance. (2) Selective adsorption followed pore size matching: ZSM-5 (0.54–0.56 nm) suited C1–C3 small molecules (10–50 mg/g); β-type (1.1–1.2 nm) showed best universality for C3–C6; HY (2.16–2.76 nm) favored C8 molecules like p-xylene (100–120 mg/g). (3) Optimizing molecular sieve proportion and layered arrangement balanced adsorption capacities across components, significantly prolonging breakthrough time. The optimal configuration placed ZSM-5 in the upper layer and HY in the lower layer. Molecular sieves also exhibited good thermal stability and regenerability. This study provides technical support for efficient treatment of multi-component VOCs from ship loading operations.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4158-6
Near-infrared piezochromic materials exhibiting luminescence responses are critical for mechanical sensors and storage devices. Covalent organic frameworks (COFs), as crystalline porous materials, combine structural adaptability with tunable photophysical properties, yet their piezochromic applications remain underexplored. Here, we report a series of donor-acceptor structured two-dimensional COFs (2D COFs) with bright red emission, all showing pronounced red-shifts spanning red to near-infrared regions. Notably, Py-BO-COF exhibits the largest piezochromic shift of 187 nm with a high sensitivity of 44.52 nm GPa−1, significantly surpassing Py-BT-COF, TPE-BO-COF, and most reported COF/MOF systems. Py-BO-COF also demonstrates fully reversible and repeatable emission switching over multiple cycles, maintaining excellent linearity without degradation. In situ spectroscopic analyses and theoretical simulations reveal that variations in piezochromic rates arise from differences in charge-transfer (CT) processes, while the pronounced red-shift in Py-BO-COF is associated with reduced interlayer distance and enhanced coplanarity. This study systematically establishes the structure-property relationship in piezochromic 2D COFs, offering strategic guidance for designing highly sensitive and reversible pressure-responsive materials, thereby advancing smart piezochromic systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4021-5
Lead-free halide double perovskites have attracted significant attention owing to their eco-friendliness, structural tunability, and self-trapped exciton emission. Nevertheless, achieving efficient and stable near-infrared-II (NIR-II) luminescence, especially in materials incorporating lanthanide ions, remains a considerable challenge in photonics research. Herein, we report a notable advance in the design and synthesis of Sb3+-sensitized Cs2NaLuCl6:Er3+ double perovskite single crystals, which exhibit an unprecedented external quantum efficiency of 45.3% for emission at 1542 nm. Sb3+ acts as a broadband ultraviolet absorber and transfers energy to Er3+ via self-trapped exciton emission. Moreover, at high concentrations of Er3+, Er3+-Er3+ cross relaxation (2H11/2 + 4I15/2 → 4I9/2 + 4I13/2) selectively populates the NIR-emitting 4I13/2 state, suppressing competitive visible emission pathways. This synergistic host-sensitizer-activator design strategy, supported by density functional theory calculations, addresses long-standing efficiency limitations and opens new avenues for high-performance NIR-II emitters in bioimaging, night vision, and optical communications.
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/s40843-025-3968-3
The commercialization of perovskite solar cells (PSCs) is hindered by stability issues primarily stemming from interfacial defects. This study employed a machine learning (ML) screening approach and constructed a learnable weighted ensemble model (LWEM) to enhance prediction robustness for identifying effective interface passivation materials. The ML model predicted that an imidazolium salt-based interface modifier, 1-benzyl-3-methylimidazolium tetrafluoroborate (BMT), is suitable for planar n-i-p PSCs. Subsequent experimental results demonstrated that BMT provides synergistic passivation via an 'ion-coordination dual-lock' mechanism that significantly suppresses non-radiative recombination, facilitates hole extraction, and improves the quality of the perovskite film. The BMT-modified devices achieve a significant increase in power conversion efficiency (PCE) from 22.45% to 24.89% under AM 1.5G illumination, and attain a high PCE of 41.31% under 1000 lux light emitting diode (LED) indoor lighting. Additionally, the modified devices exhibit outstanding stability under long-term storage and maximum power point tracking conditions. This work provides a strategy for developing high-performance and highly stable PSCs for both indoor and outdoor applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4018-6
The pursuit of advanced wear-resistant materials for cryogenic applications is often hindered by a fundamental trade-off between enhancing strength and damage tolerance. CoCrNi-based medium-entropy alloys (MEAs), while excellent in cryogenic toughness, suffer from this very limitation. Although second-phase reinforcement boosts strength, the strain incompatibility between phases inevitably triggers cracking, which is severely exacerbated at low temperatures. This work introduces a novel microstructural design strategy based on regulated partial recrystallization to overcome this long-standing challenge. By tailoring the thermomechanical processing of a (CoCrNi)90Mo10 MEA, we engineered a unique architecture where a fully recrystallized FCC phase is homogeneously embedded within a continuous skeleton of a hard, non-recrystallized σ phase. The alloy with this optimized microstructure achieved a remarkably low wear rate at 113 K that is less than half of its as-cast and fully recrystallized counterparts. The experimental and modeling results indicate the underlying synergy: the σ skeleton provides robust structural support and distributes stress deeply, while the recrystallized FCC phase, with its high density of grain boundaries and annealing twins, acts as a compliant strain-accommodating medium, effectively suppressing interfacial cracking. This combined 'skeleton effect' and 'recrystallization effect' not only delivers exceptional cryogenic wear resistance but also offers a practical strategy for designing high-performance, crack-resistant dual-phase composites for extreme environments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4144-y
Developing efficient strategies for electrically manipulating two-dimensional magnetism at room temperature is a key challenge in contemporary spintronics. In this study, we demonstrate giant electromechanical control over the magnetism of the room-temperature van der Waals ferromagnet Fe3GaTe2 by integrating it with the ferroelectric α-In2Se3. Modest gate voltages lead to an almost complete suppression of the coercive field by 96.5%, corresponding to a remarkable peak modulation sensitivity of ~8.1 mT V−1, which stands out among existing van der Waals magnetoelectric systems. Importantly, this substantial magnetoelectric response is predominantly unaffected by voltage polarity, as both positive and negative gate voltages induce similar magnetic modulation effects. To elucidate the underlying mechanism, we tracked the voltage-induced Raman spectral changes, revealing a peak shift of 1.7 cm−1 that accurately represents an effective in-plane tensile strain of ~1.42% under an equivalent bias, demonstrating polarity independence as well. The synchronized magnetic response and strain variation unequivocally indicate that the induced tensile strain serves as the fundamental physical driver behind the magnetic modulation. Additionally, density functional theory calculations corroborate that the reduction in magnetic anisotropy induced by tensile strain results in a decrease in the coercive field. Our work establishes a novel and efficient approach for achieving voltage control of magnetism at room temperature in van der Waals multiferroic heterostructures, highlighting their significant potential for applications in ultra-low-power magnetic logic and sensing technologies.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60666-4
The catalytic hydrogenation of CO2 to ethanol is a pivotal technology for carbon neutrality and high-value chemical production. Cobalt-based catalysts, with their unique electronic structure and tunability, are promising for this reaction, yet challenges persist: low single-pass CO2 conversion, ethanol selectivity below 60%, and rapid deactivation. This review systematically analyzes recent progress, establishing the thermodynamic and kinetic framework, and dissecting molecular-level mechanisms, particularly C–C bond formation and controlled oxygen removal. It critically evaluates synergistic effects among metallic Co, Co2C, CoOx, and bimetallic configurations, emphasizing structure-activity relationships influenced by supports and promoters. Inverse catalysts and tandem systems are reviewed, along with water's role as a hydrogen source. The review identifies shortcomings and advocates for advanced in situ/operational characterization and theoretical modeling to guide next-generation catalyst design. Key findings from cited studies include: Co/La4Ga2O9 achieving high selectivity (reference [85]); K-loaded Cu/CoOx boosting ethanol production (reference [86]); Ga-promoted CuCo catalysts with Cu-CoGaOx interfacial sites (reference [88]); and Mo-tailored CoFe alloys suppressing over-carburization (reference [89]). These insights provide a framework for developing efficient cobalt-based systems, deepening mechanistic understanding, and accelerating sustainable ethanol production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4066-x
Direct seawater electrolysis offers a sustainable route to green hydrogen, yet is hindered by the competing chlorine evolution reaction and severe catalyst corrosion. Layered double hydroxides (LDHs), with tunable host layers and exchangeable interlayer galleries, are promising for the oxygen evolution reaction (OER) in seawater, but their intrinsic activity and chloride tolerance need enhancement. Anion intercalation engineering has emerged as a powerful strategy to address these challenges. By inserting functional anions—from simple inorganic ions and polyoxometalates to organic molecules—into LDH interlayers, it is possible to expand interlayer spacing for improved mass transport, modulate the electronic structure of metal centers to boost intrinsic OER activity, and create a negatively charged interfacial microenvironment that selectively enriches OH−. This review comprehensively examines design principles, mechanistic insights, and catalytic performance of various anion-intercalated LDHs for seawater splitting. It highlights representative breakthroughs in material design, discusses integration strategies in practical electrolyzer devices, and evaluates long-term stability under industrial operating conditions. Finally, it outlines key challenges and future directions for rational design and scalable deployment of high-performance, durable LDH-based catalysts for sustainable hydrogen production from seawater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4173-x
Ferroelectric memory, with its promise of low power consumption, high writing speed and exceptional endurance, requires the scaling of ferroelectric films to ultrathin dimensions—often just a few atomic layers thick. However, such extreme thinning risks destabilizing or even erasing electric polarization, mainly due to the detrimental depolarization field. Remarkably, certain ferroelectrics exhibit an intrinsic immunity to this effect, as predicted theoretically and confirmed experimentally. Examples include improper ferroelectrics, hyper ferroelectrics, engineered heterostructures, and low-dimensional van der Waals ferroelectrics. This review systematically examines these unique materials, unravelling the fundamental physics behind their polarization robustness and the mechanisms enabling them to resist the depolarization field. By bridging theory with experimental advances, we aim to inspire the design of next-generation ferroelectrics capable of overcoming critical challenges encountered in practical ferroelectric memory devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4163-y
Liquid metals (LMs) are promising catalyst systems due to their unique interfacial properties, yet migration and aggregation of active species cause performance degradation. Here, we report a composition optimization strategy using a Ga-In eutectic liquid metal support to reduce surface energy and achieve homogeneous incorporation of Cu species (GaIn-Cu). Comprehensive characterizations confirm uniform Cu dispersion, which inhibits migration and formation of CuGa2 intermetallic phases during CO2 electroreduction (CO2RR). The GaIn-10-Cu catalyst achieves a maximum CH4 Faradaic efficiency of 73.49% at -0.8 V vs. RHE, significantly higher than Ga-Cu (61.49%). Moreover, GaIn-10-Cu exhibits enhanced stability for CH4 generation over 40 h of continuous operation. In-situ spectroscopic studies reveal that GaIn-10-Cu favors formation and protonation of key *CHO and *OCH3 intermediates, steering selectivity toward CH4. This work demonstrates that tuning LM composition modulates catalytic site performance, offering a strategy for durable and selective LM-based electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4132-y
Manganese-iron-based mixed polyanionic cathodes are promising for sodium-ion batteries (SIBs) due to high energy density and operating voltage, but suffer from Jahn-Teller distortion of Mn3+ that degrades cycling stability. Here, a structural modulation strategy via Mg2+ doping is reported. Electrochemically inert Mg2+ forms stronger chemical bonds, adjusts lattice parameters, and suppresses Jahn-Teller distortion, enhancing structural stability. Mg2+ also widens sodium-ion diffusion channels, improving diffusion kinetics. Additionally, an in-situ three-dimensional carbon nanotube (CNT) conductive network boosts electronic conductivity. The resulting NFMPP-Mg@CNTs cathode delivers a discharge capacity of 126 mAh g−1 at 0.1 C (near theoretical 129 mAh g−1), retains 80% capacity after 3000 cycles at 0.5 C, and achieves an energy density of 401 Wh kg−1, among the highest reported for mixed phosphate systems. Ex-situ XPS and first-principles calculations confirm that Mg2+ resists geometric distortion by enhancing lattice stability and widening Na+ diffusion pathways (migration barrier reduced from 0.566 to 0.398 eV). This work provides a viable route for high-energy, long-life SIB cathodes suitable for large-scale energy storage.
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•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.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3366-9
Organic solar cells (OSCs) have transitioned from <1% initial power conversion efficiency (PCE) to a benchmark exceeding 20% in single-junction and tandem architectures, marking a critical milestone for solution-processable photovoltaics. This review consolidates recent reports (2022–2025) on OSCs with PCE >20%, analyzing key strategies: photoactive material innovation (wide-bandgap polymer donors, narrow-bandgap non-fullerene acceptors), multi-component system construction, deposition protocol optimization, solid/solvent additive engineering, and hole/electron transport layer development. Empirical data from 15 high-impact studies reveal PCEs of 20.0–20.6% in single-junction devices and 20.2–26% in perovskite/organic tandem cells, with interfacial engineering (e.g., yttrium phosphotungstate, carbazole-modified 2PACz, naphthalene diimide interlayers) suppressing bimolecular recombination and enabling scalable large-area fabrication. Operational stability remains a bottleneck: amide-based cathode interlayers achieve 20% PCE with dual-modification mechanisms, while self-assembled monolayers enable hole transport layer-free devices with 18% efficiency and improved stability. The review identifies next-stage challenges: reducing voltage losses (to <0.5 V), scaling deposition uniformity beyond 100 cm², and achieving cost parity with silicon (<$0.30/Wp). These issues are critical for flexible and wearable power suppliers, where mechanical durability (<5% PCE degradation after 1000 bending cycles) and low-temperature processing (<150°C) are mandatory. The analysis provides a roadmap for industrial translation, emphasizing that material–device co-optimization, rather than isolated breakthroughs, will determine commercial viability.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3359-4
Dynamic fluorescent materials with stimulus-responsive emission modulation are pivotal for next-generation information security. This study presents a photoresponsive fluorescent composite system where spiropyran (SP) is covalently grafted onto naphthalimide-functionalized silica aerogel matrices. The architecture exhibits reversible fluorescence resonance energy transfer (FRET) between naphthalimide donors and merocyanine (MC) acceptors under ultraviolet irradiation, enabling dynamic emission shifting from green (blue) to red. Aggregation-induced emission (AIE) characteristics of SP are exploited to engineer a smart material system that reversibly regulates distinct red fluorescence by precisely controlling amino group dispersion on the naphthalimide-functionalized silica aerogels. This spatial manipulation governs the molecular packing state of SP, enabling dynamic fluorescence modulation. Programmable control over fluorescence chromatic transitions is achieved by systematically adjusting SP grafting densities (1%, 2%, and 3% w/w). A unique mode of dynamic information encryption technology is developed utilizing these dynamic fluorescence variations. The materials substantially enhance information encryption levels due to precisely adjustable fluorescence properties in response to external stimuli over time, making the encryption process unpredictable and complex, thereby exponentially increasing the difficulty for unauthorized replication or decoding. However, photostability requires further improvement (Table S3).
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-024-3344-8
The sluggish kinetics of the oxygen evolution reaction (OER) in conventional water electrolysis imposes a substantial energy penalty, necessitating the development of thermodynamically favorable anodic alternatives. This study reports a Cu/Co(OH)2/Ti3C2(OH)X-MXene (MX) catalyst synthesized via electrodeposition followed by in-situ electrochemical reduction, which induces surface reconstruction to form the activated Cu/Co/Co(OH)2/MX phase. The reconstructed catalyst achieves an ultra-low overpotential of −78 mV at 10 mA cm−2 for hydrazine oxidation (HzOR), with a Tafel slope of 28.7 mV dec−1. Density functional theory calculations reveal that MXene incorporation enhances conductivity and wettability, promotes electron transfer to Co(OH)2, and lowers the Co d-band center from −0.867 to −0.883 eV upon Cu addition, thereby facilitating N2 desorption. This synergy reduces the free energy barrier of the rate-determining step from 0.33 to 0.24 eV. A two-electrode electrolyzer employing this bifunctional catalyst requires only 0.252 V to reach 100 mA cm−2, representing a 1.519 V reduction compared to conventional water electrolysis. These findings demonstrate a viable pathway for energy-efficient hydrogen production via hydrazine-assisted water splitting.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3346-4
This study presents a large-scale machine learning screening to discover promising candidate compounds for lithium-based solid-state electrolyte batteries. Key properties such as superionic conductivity and wide electrochemical stability are crucial for achieving high-performance solid-state batteries, which have great potential as the next generation of batteries with high energy density and relatively low cost. Our work employs high-throughput screening using multiple regression machine learning models on lithium-containing materials. Subsequently, ab initio molecular dynamics (AIMD) simulation and experimental validation were conducted exhibiting high ionic conductivity, namely Li4.5TiO3.25 and Li2VCl5. Furthermore, we applied a design methodology to increase the ionic conductivity at ambient temperature. These findings provide a comprehensive strategy for the development of room-temperature superionic conductors for high-performance solid-state batteries.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3312-9
Passive thermal management systems lack adaptive capacity and precise temperature control, limiting their deployment in dynamic environments. This study introduces a passive thermostat comprising a thermal-responsive poly(N-isopropylacrylamide) (PNIPAM) hydrogel upper layer and a photothermal conversion bottom layer. The hydrogel undergoes a reversible phase transition between transparent and opaque states, modulating solar heating and cooling to maintain a designable, stable temperature. By tuning the lower critical solution temperature (LCST) of the hydrogel between 30 and 38 °C, the thermostat achieves a set-point equal to the LCST under open-air conditions. Experimental validation over 3 h in cold winter demonstrated a temperature variance of only 0.287 °C, while on extremely hot summer days the system maintained a stable, relatively low temperature by switching off solar heating. These results establish a viable pathway for energy-free, precise thermal regulation using renewable solar resources, with potential applications in building energy efficiency, personal thermal management, and electronic device cooling.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3354-3
Nanocrystallization of glasses is a critical pathway for designing advanced materials with superior properties. This study investigates the crystallization behavior of lunar glasses retrieved by the Chang’E-5 mission. Solar wind irradiation induces abundant Fe nano-clusters (~2 nm) within a ~4 μm surface layer. Upon heating, these defects act as nucleation sites, facilitating homogeneous and dense Fe nanocrystals. In contrast, the unirradiated interior crystallizes into coarse Fe crystals. Inspired by these findings, advanced magnetic nanocrystalline alloys are designed based on Fe86B14 metallic glass via H+ ion irradiation. After H+ irradiation and nanocrystallization, the surface nanocrystals are 5–8 nm, significantly smaller than the deep interior (15–20 nm). Permeability at 10 kHz increases by ~10.2%. These results provide insights into the thermal stability of lunar glasses and present a novel strategy for designing advanced soft magnetic materials with enhanced performance.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3345-y
Granular carbon molecular sieves (CMSs) with sub-angstrom molecular recognition accuracy were synthesized from coconut shells via a chemical-free, eco-friendly method. The resulting CBCMS-800 exhibits a C2H4 uptake of 2.15 mmol/g at 298 K and 100 kPa while nearly excluding C2H6, achieving a C2H4/C2H6 uptake ratio of 15.36 and a molecular recognition resolution of 0.28 Å. Breakthrough curves confirm excellent separation performance. The evolution of pore size distribution (PSD) in amorphous CMS was elucidated through multiple characterization techniques, revealing that elevated temperature radiation induces both pore creation and shrinkage. A three-region model explains the sub-angstrom sieving mechanism. The precise PSD control at sub-angstrom scale, combined with low cost and structural stability, positions CBCMS-800 as a promising candidate for industrial C2H4/C2H6 separation, offering a sustainable alternative to cryogenic distillation and costly MOFs.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3442-0
Cubic-phase CsCdCl3 microcrystals were synthesized via room-temperature solid-state synthesis, overcoming the elusiveness of this polymorph relative to the extensively reported hexagonal phase. Doping with 10% Mn2+ elevated the photoluminescence quantum yield (PL QY) to near unity and extended afterglow duration to 10 h. The cubic phase exhibits metastability toward thermal treatment, transitioning to the hexagonal phase upon heating at 100 °C. Phase transition is also sensitive to Mn2+ doping concentration, providing a facile tool to manipulate the lattice structure of octahedra dimers (hexagonal) or monomers (cubic). Phonon spectrum and lattice formation energy calculations rationalize the phase transition mechanism. The phosphor demonstrates potential for information storage, X-ray imaging, and anti-counterfeiting. Under X-ray excitation, a spatial resolution of approximately 6 lp/mm was achieved, and luminescence intensity remained unchanged after 10 min of irradiation. Stored information, including a poem and a chip pattern, was retrievable upon heating at 125 °C. A hand-printed flower-like pattern on PET substrate, composed of pristine, 10% Mn2+, and 20% Mn2+-doped CsCdCl3, exhibited tunable photoluminescence color and afterglow duration. The digit '8' hidden under UV excitation was revealed after ceasing excitation, demonstrating anti-counterfeiting capability. This work opens avenues for advanced applications in information storage, X-ray imaging, and anti-counterfeiting.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3458-1
Self-trapped excitons (STEs) in metal halide perovskites (MHPs) enable broadband emission with large Stokes shifts, but their photoluminescence quantum yields (PLQYs) are constrained by high exciton binding energy and halogen-vacancy-associated non-radiative recombination. Here, trace Ag doping into Cs2NaBiCl6 double perovskites enhances PLQY from 16% to 89%, a factor of 5.6, surpassing previous Cs2NaBiCl6-based emitters. Experimental and theoretical analyses reveal that Ag-initiated covalent interactions reduce exciton binding energy by 0.12 eV via local symmetry breaking, improving photoexcitation. These interactions also passivate Cl vacancy defects, suppressing non-radiative recombination. Consequently, Cs2NaBiCl6:0.7% Ag+ accumulates active STEs, achieving high PLQY. Near-infrared light-emitting diodes assembled with this material demonstrate utility in nondestructive spectral analysis and night vision illumination. This work presents an effective strategy for enhancing photoemission in MHPs with high PLQY for advanced optoelectronic applications.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3437-6
Interfacial solar-driven vapor generation offers a sustainable route to freshwater, yet practical deployment is constrained by salt crystallization, high material costs, and thermal losses. This work reports a sandwich wettability structure (PNMF) comprising a polypyrrole-coated hydrophobic top layer, a hydrophilic melamine foam interlayer, and a tunable hydrophobic bottom layer. The PPy coating absorbs broadband solar radiation and retains heat in situ; the hydrophilic interlayer supplies water through interconnected microporous channels, forming confined water clusters that reduce evaporation enthalpy. The bottom layer's central hydrophobicity regulates water transport to balance supply and evaporation, while its hydrophobic edges provide self-floatability and minimize heat loss. Under 1 sun, the PNMF evaporator achieves 2.71 kg m−2 h−1 with ~90% solar-thermal conversion efficiency over 24 cycles. In 10 wt% NaCl simulated seawater, no salt crystals formed after 12 h, and the evaporation rate remained stable at 2.62–2.87 kg m−2 h−1 over 20 days. Under natural autumn sunlight (average irradiation <0.4 kW m−2, temperatures <24 °C), a portable device produced approximately 3 kg m−2 over 11 h, with purified water salinity below 0.14‰. The simple, low-cost design addresses salt accumulation and durability bottlenecks, offering a scalable pathway for decentralized freshwater production.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3568-4
Viral capsids exemplify icosahedral polyhedral architectures formed via spontaneous self-assembly of identical protein subunits through non-covalent interactions governed by symmetry-matching rules. Mimicking this biological strategy, hydrogen-bond-directed supramolecular polyhedra have emerged as a focal point in supramolecular chemistry, offering dynamic responsiveness, reversible assembly, and structural designability. However, these systems face persistent challenges in structural stability and geometric precision control, particularly under competitive solvent conditions and thermal stress. This review systematically categorizes hydrogen-bonded supramolecular polyhedra by structural type and building block characteristics, including calix[4]resorcinarene cavitands, resorcin[4]arenes, pyrogallol[4]arenes, and peptidic containers. Key experimental milestones are highlighted: encapsulation-induced stabilization of heterocapsules (Chem Eur J, 2013, 19: 3685–3692), guest rotation within self-assembled heterocapsules (Proc Natl Acad Sci USA, 2009, 106: 10444–10448), and mechanochemical encapsulation of fullerenes in peptidic containers via dynamic chiral self-sorting (Chem Eur J, 2016, 22: 3148–3152). These constructs demonstrate tunable capsule spaces through hydrogen-bonding linkers (J Org Chem, 2006, 71: 8800–8806) and hybrid hydrogen-bonded/metal-ligand coordination capsules with dual guest-exchange control (Chem – An Asian J, 2014, 9: 1076–1082). The review identifies critical scientific bottlenecks—including solvent-dependent disassembly, limited cavity size, and trade-offs between reversibility and mechanical robustness—and outlines future trends toward precision functionalization. Establishing a theoretical framework for controlled assembly, this work provides methodological guidance for advancing bioinspired hydrogen-bonded polyhedral structures in synthetic chemistry and materials science.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3530-3
Organic semiconductors (OSCs) are pivotal for large-area wearable devices, optoelectronic displays, logic circuits, and next-generation optoelectronics, yet their commercialization is impeded by extrinsic impurities, particularly ubiquitous oxygen. Oxygen's high electronegativity drives redox interactions within OSCs, traditionally viewed as detrimental charge-carrier traps that degrade performance and stability. Recent evidence reveals a paradoxical effect: at trace levels, oxygen doping can enhance device performance and stability by pre-emptying donor-like traps. This perspective delineates the mechanistic underpinnings of trace oxygen doping, discussing state-of-the-art modulation strategies to optimize device mobility and stability. Through systematic analysis of structure-property relationships, we examine oxygen-induced modifications in charge transport dynamics and operational reliability. We propose a development framework for oxygen element doping engineering and outline emergent challenges in interfacial stabilization protocols. The analysis synthesizes findings from recent literature, including observations that prolonged air exposure leads to oxygen adsorption and penetration into the organic semiconductor channel, forming traps. By reconciling contradictory roles of oxygen, this work provides a roadmap for precise oxygen modulation, aiming to overcome stability bottlenecks in organic field-effect transistors (OFETs), organic light-emitting diodes (OLEDs), organic photovoltaic cells (OPVs), and sensing devices. The perspective underscores the need for targeted strategies to control oxygen incorporation at trace levels, balancing trap passivation and doping effects to achieve optimized optoelectronic performance and operational longevity.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3461-5
Thermal compression experiments were conducted on Al-Cu-Mg alloys with varying TiB2 contents (0, 0.1, and 1 wt%) in the temperature range of 340–500 °C and strain rate range of 0.01–10 s−1. Arrhenius-type constitutive equations were formulated to characterize flow behavior, and microstructures of deformed alloys were analyzed. TiB2 particles markedly refine grains from 117 μm (0 wt% TiB2) to 35 μm (0.1 wt% TiB2) and 29 μm (1 wt% TiB2). Both grain size reduction and TiB2 presence contribute to increased flow stress during thermal deformation. Grain refinement induced by TiB2 addition enhances dynamic recrystallization (DRX) processes. Excess TiB2 (1 wt%) further stimulates DRX via particle-stimulated nucleation (PSN) mechanism. Addition of TiB2 effectively suppresses coarsening of recrystallized grains following thermal deformation. These findings elucidate the dual role of TiB2 particles in modulating thermal deformation behavior and recrystallization kinetics, providing a quantitative basis for optimizing thermomechanical processing of particle-reinforced Al-Cu-Mg alloys for aerospace and military applications.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3349-2
Oxide-derived copper (OD-Cu) catalysts are pivotal for the selective electroreduction of CO2 to multi-carbon (C2+) products, yet the reconstruction pathways that dictate active facet formation remain inadequately resolved. This study introduces a 'framework-dissolution' strategy to modulate the Cu–O geometric coordination in precursor oxides by incorporating inert elements, thereby directing the reconstruction process. In situ X-ray diffraction and Raman spectroscopy reveal that distinct Cu–O coordination environments—specifically tetrahedral versus octahedral—govern the evolution of OD-Cu facets. Tetrahedral coordination yields a dominant Cu(200) facet, whereas octahedral coordination favors Cu(111). The OD-Cu t catalyst, enriched in (200) facets, achieves a Faradaic efficiency for C2+ products (FEC2+) of 75.1% at a partial current density of −187.8 mA cm−2, significantly outperforming its (111)-dominated counterpart. Density functional theory calculations attribute this enhancement to the lower energy barrier for C–C coupling on the (200) surface. These findings establish a direct correlation between precursor coordination geometry and catalytic performance, offering a rational design principle for high-efficiency CO2 reduction catalysts.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3561-3
Nanoscale segregation of alien solute atoms at grain boundaries (GBs) can enhance the stability and mechanical properties of the GB. Systematic molecular dynamics simulations were conducted to clarify the strengthening effect of Cu segregation on Al Σ9 (221)[11̄0] GB. The predicted negative segregation energy indicates a strong driving force for Cu segregation at Al GBs, which is expected to improve GB stability and strength. Detailed structural analysis during uniaxial tensile testing reveals that Cu segregation reduces the free volume of GB atoms and restricts GB atomic displacement, thereby retarding dislocation nucleation and increasing the tensile strength of the GB. The suppressed atomic migrations by Cu doping also give rise to exceptional stability of E structures at the GB, which retain their kite shape against structural transition during straining. With Cu segregation, the pattern of dislocation nucleation from the GB shifts from a shuffling-assisted regime to a collective-migration regime, the latter necessitating higher critical stress. Furthermore, Cu doping elevates the GB shear strength by blocking shear-coupled GB migration under shear deformation. The enhanced GB resistance against shear straining is attributed to the stabilized E structures with Cu segregation featuring reduced atomic free volume. This study provides atomic-scale insights into the stabilizing and strengthening effect of Cu segregation on Al GBs.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3482-2
Lithium-ion batteries (LIBs) have long dominated consumer electronics, grid storage, and electric vehicles due to high energy density and cycle life. Graphite remains the most commercialized anode material, owing to its stable layered structure, electrical conductivity, and cost-effectiveness. However, its theoretical specific capacity is limited to 372 mAh/g, and intrinsic Li+ diffusion kinetics are sluggish, impeding high-power and high-energy density systems. This review examines the intercalation and failure mechanisms of graphite anodes, focusing on bulk and surface engineering strategies to enhance fast-charging capability. Key approaches include carbon coating, artificial solid-electrolyte interphase (SEI) layers, and heteroatom doping. Empirical data from recent studies demonstrate that Li3PO4-enriched SEI layers improve Li+ de-solvation, enabling fast charging and low-temperature operation. Black TiO2−x coatings and amorphous Al2O3 layers enhance fast charging by reducing charge-transfer resistance. Pitch crystallinity in carbon coatings affects electrochemical performance, with optimized coatings achieving reversible capacities exceeding 350 mAh/g at 4C. The review synthesizes these advances, highlighting that interface engineering can reduce Li+ diffusion barriers and mitigate graphite exfoliation, while bulk modifications such as sp-carbon interfaces and order@disorder pathways facilitate rapid lithium diffusion. Industrial adoption requires scalable, cost-effective coating methods that maintain cycle life beyond 1000 cycles with minimal capacity fade. The review concludes that synergistic bulk and interface engineering is essential for next-generation graphite anodes, but challenges remain in achieving uniform coatings and preventing SEI degradation under extreme fast-charging conditions.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3639-7
Organic near-infrared (NIR) afterglow materials hold potential for bioimaging due to deep tissue penetration and high signal-to-background ratio (SBR). However, achieving emission wavelengths above 800 nm remains a significant challenge because of the energy gap law, which accelerates nonradiative decays and destabilizes triplet excitons. Here, bright NIR afterglow at 820 nm is realized via a molecular design strategy: alternating donor-acceptor (D-A) structures and multiple S···O intramolecular interactions enhance intramolecular charge transfer (ICT) and strengthen intramolecular interactions. Terminal groups and side chains optimize intermolecular interactions to suppress nonradiative transitions. The resulting material exhibits afterglow with a wavelength of 820 nm, surpassing previous organic afterglow systems limited to 780 nm. This work provides a promising strategy for efficient NIR afterglow, promoting applications in deep-tissue bioimaging with high SBR. The findings address the bottleneck of extending afterglow wavelengths beyond 800 nm, offering a viable route for advanced bioimaging and anticounterfeiting technologies.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3533-1
Two-dimensional metal halide perovskites (2D MHPs) exhibit strong excitonic effects and structural tunability, but their photoelectric properties are dictated by exciton dynamics. This study investigates halogen doping in PEA2Pb(Br1−xClx)4, revealing a systematic spectral evolution from blue to white-light emission as Cl content increases. Temperature-dependent photoluminescence and lattice distortion analysis indicate that Cl doping induces subtle structural perturbations, switching between extrinsic and intrinsic self-trapped exciton (STE) states. Below x = 0.2, intrinsic STE formation is enhanced via lattice softening; above x = 0.2, defect-assisted trapping pathways dominate. A dual-channel trapping model, validated by temperature-activated detrapping kinetics and transient absorption spectroscopy, accounts for the observed spectral broadening. These findings provide a defect engineering strategy for tailoring emission in low-dimensional hybrid perovskites, with implications for white-light LEDs and scintillators.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3518-2
Semitransparent organic photodetectors (ST-OPDs) are constrained by the limited transmittance of conventional electrodes, typically indium tin oxide (ITO) bottom electrodes paired with thin metal top electrodes (e.g., 10 nm Ag), which restrict average visible transmittance (AVT) to below 60%—well short of the ~80% required for electronic displays. This work introduces a cost-effective transfer-printing process for PEDOT:PSS top electrodes, yielding films with >90% transmittance across the ultraviolet-visible-near-infrared spectrum. The resulting ST-OPDs achieve an AVT of 74.8% and a specific detectivity exceeding 5 × 10^11 Jones. The high transparency enables dual-sided responsiveness, demonstrated by photoplethysmography heart-rate monitoring from both device sides, facilitating integration with readout circuits. The transfer-printing method exhibits broad applicability across various active layers. These findings establish a scalable route to high-performance ST-OPDs for integratable, biocompatible, and invisible optical-sensing applications in transparent electronics.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3724-y
Respiratory sensors capable of real-time monitoring are essential for health management, disease prevention, and early diagnosis. Achieving real-time respiratory monitoring requires sensors with fast and sensitive response, high stability, and mechanical flexibility. Here, we demonstrate an amino-modified graphdiyne (NH2-GDY)-based sensor for real-time monitoring of human respiratory status. Compared to pristine graphdiyne, the amino-functionalized NH2-GDY exhibits enhanced adsorption capacity for water molecules. Its enlarged nanoporous structure facilitates the migration of water molecules, enabling rapid adsorption/desorption. The sensor demonstrates ultra-fast and ultra-sensitive respiratory responses, coupled with remarkable flexibility and stability. When integrated into a wearable electronic system, it achieves real-time monitoring of sleep apnea syndrome (SAS). This work highlights the feasibility of novel carbon-based respiratory sensors in advanced health monitoring applications. The sensor was fabricated on polyimide (PI) substrates, ensuring mechanical robustness. The amine-rich structure and nanoscale porosity of NH2-GDY facilitate rapid adsorption and transfer of water molecules, enabling fast and highly sensitive respiratory responses. This strategy provides a pivotal solution for early SAS diagnosis and disease management, establishing a novel respiratory sensing paradigm while expanding the application landscape of graphdiyne-based materials.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3606-6
Transition-metal carbides (TMCs) have emerged as promising alternatives to platinum-based catalysts in the electrocatalytic hydrogen evolution reaction (HER), showcasing substantial potential for sustainable energy applications. Herein, a rapid microwave-plasma-assisted synthesis strategy (60 s) is employed to fabricate phosphorus-doped tungsten carbide (WC) uniformly loaded with osmium (Os) nanoclusters (Os/P-WC). The resulting Os/P-WC catalyst exhibits exceptional HER performance, achieving a benchmark current density of 10 mA cm−2 with low overpotentials of 20, 51, and 11 mV in alkaline, acidic, and alkaline seawater electrolytes, respectively. Furthermore, it maintains stable operation for 100 h at both 10 and 500 mA cm−2 in alkaline electrolyte. In-situ Raman spectroscopy, in-situ electrochemical impedance spectroscopy (EIS), and hydrogen binding energy (HBE) experiments confirm that the electronic metal-support interaction (EMSI) generates electron-enriched Os active sites. These sites facilitate the adsorption and dissociation of water, optimize the adsorption and desorption of hydrogen intermediates (H*), and thereby significantly accelerate reaction kinetics. This work presents a novel design and synthesis strategy for developing highly active electrocatalysts with low precious metal loading for H2 evolution applications.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3476-4
Ammonia synthesis remains dominated by the Haber-Bosch process, which operates at 400–500 °C and 150–300 bar, consumes 1–2% of global energy, and emits ~1.4% of global CO2. Ru-based catalysts supported on carbon and promoted with basic oxides (Ba, Cs, La) exhibit high activity under mild conditions, but conventional designs suffer from a trade-off: BaO domains block Ru active sites while attempting to donate electrons. Lee et al. (Nat Catal, 2025, 8: 248–256) resolved this by using conductive carbon to bridge isolated Ru and BaO domains, enabling long-range H+/e− pair migration. Screening eleven carbon supports, they identified N-doped multi-walled carbon nanotubes (10–20 nm diameter, N-MWNT-1) with the lowest work function as optimal. At a Ba/Ru molar ratio of 0.75, the catalyst achieved an NH3 production rate 7.4 times higher than conventional BaO-promoted Ru catalysts under 573 K and 1.0 MPa, using high-purity H2 and N2 (99.999%, O2 <0.4 ppm, H2O <0.7 ppm). This design decouples proton and electron storage, preventing BaO-induced blockage of Ru surfaces and enabling superior activity and stability. The Ba-Ru/carbon catalyst offers a transformative pathway for reducing energy consumption and integrating with electrolytic hydrogen production in industrial ammonia synthesis.