SinoGreenTech Academic Portal
ZX
Verified CAS / Academic Author28 Decoded Studies

Prof. ZHANG Xuyan

School of Environmental Science and Engineering, Shandong University, Qingdao, China

Co-Affiliations:Faculty of Environmental Science and Engineering, Yunnan Provincial Key Laboratory of Soil Carbon Sequestration and Pollution Control, Kunming University of Science & Technology, Kunming, 650500, ChinaSchool of Civil Engineering, Southeast University; Key Laboratory of Environmental Nanotechnology and Health Effects, Research Center for Eco-Environmental Sciences, Chinese Academy of SciencesChina University of Petroleum (East China) & Liaoning Petrochemical UniversityThe Hong Kong Polytechnic UniversityState Key Laboratory of Clean and Efficient Coal Utilization, College of Chemistry and Chemical Engineering, Taiyuan University of Technology, Taiyuan 030024, China

Research Publications & English Decoded Briefs

Showing 28 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4316-0

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

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

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

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

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

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3694-3

Atomic- and Molecular-Scale Interfacial Engineering for Superior Lithium Metal Anodes

Lithium metal anodes (LMAs) are among the most promising candidates for next-generation batteries with high energy density. However, their practical application is hindered by persistent challenges such as dendritic lithium growth, unstable solid electrolyte interphases (SEI), and poor Coulombic efficiency. Surface coating has emerged as a viable solution to address these limitations. In particular, atomic and molecular layer deposition (ALD/MLD) techniques offer unparalleled control over the fabrication of ultrathin, conformal coatings, making them especially suitable for stabilizing LMA interfaces. This review comprehensively summarizes recent progress in applying ALD and MLD methodologies to construct durable artificial interphases on LMAs. We discuss the underlying mechanisms through which these coatings inhibit dendrite formation, improve interfacial integrity, and facilitate uniform lithium-ion transport. The roles of inorganic ALD coatings, organic MLD coatings, and their organic–inorganic hybrids are systematically examined, with a focus on their chemical composition, deposition behavior, and electrochemical characteristics. Moreover, we highlight the enhanced performance achieved through the integration of ALD/MLD-engineered interfaces in full-cell systems. The review concludes with a discussion of current challenges and potential research avenues aimed at advancing the rational development of effective LMA protection strategies. Overall, this work offers valuable insights into the role of interfacial engineering via ALD and MLD in enabling the practical deployment of lithium metal batteries.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3706-3

Interfacial charge redistribution in ultrafine ruthenium nanoparticle-decorated N-modified carbon catalysts accelerates oxygen redox for lithium-oxygen batteries

Aprotic lithium-oxygen (Li-O2) batteries are severely limited by slow cathode reaction kinetics and large polarization. Herein, we design and prepare a Mott-Schottky catalyst by uniformly embedding ultrafine Ru nanoparticles on nitrogen-doped carbon (Ru@NC) nanoflakes to accelerate oxygen redox kinetics of Li-O2 batteries. The Mott-Schottky effect of Ru@NC drives spontaneous electron rearrangement in the NC matrix and induces a strong built-in electric field at heterointerfaces, which accelerates the activation and conversion of oxygen intermediates. The obtained Ru@NC possesses rich Mott-Schottky heterointerfaces and defective carbon structures, which provide extensive adsorption and nucleation sites. More importantly, Ru@NC manifests moderate affinity for the intermediate LiO2, inducing formation of unique nanosheet-like Li2O2 with low Li2O2/cathode interfacial impedance, which further enhances oxidation kinetics. These enable the Li-O2 battery with Ru@NC to deliver a remarkably reduced polarization of 0.89 V, superior rate performance, and prolonged lifespan of over 200 cycles. This work will provide valuable guidelines for engineering advanced electrocatalysts for high-performance Li-O2 batteries and beyond.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3682-6

Axial orbital hybridization enables single-atom Fe-N-C hollow microplates for efficient oxygen reduction

Metal single-atoms with optimized coordination structure on highly accessible substrate can maximize the metal utilization efficiency along with enhancing catalytic activities. Herein, axial nitrogen-coordinated Fe-N5 sites on N-doped carbon (denoted as FeN5@N-C) hollow microplates are fabricated via a unique Fe3+-chelated polydopamine assisted hollowing strategy using ZIF-L microplates as multifunctional templates. Due to the powerful chelating and adhesive ability of polydopamine, this hollow-carbon strategy can be extended to fabricate single-atom Fe-N-C hollow structures with different shapes and encapsulate other transition-metal single atoms (Ni, Co, Mn, and Cu) into the N-doped carbon hollow microplates. The FeN5@N-C hollow microplates exhibit outstanding oxygen reduction reaction (ORR) capability with an impressive half-wave potential of 0.93 V vs. reversible hydrogen electrode and high stability, which can serve as air-cathode catalysts for high-performance Zn-air batteries with high peak power density of 225.3 mW cm−2 and stable cyclability of up to 400 h. Comprehensive analysis and theoretical calculations elucidate that axial nitrogen coordination in Fe-N5 catalytic sites, unlike the planar Fe-N4 configuration, can compete well with the bonding of OH* through additional 3d-2p orbital hybridization, thereby giving moderate bonding strength to enhance the ORR activity.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3727-0

Multilevel Encapsulation-Engineered Ultra-Stable Flexible Scintillator Films for High-Resolution X-ray Imaging

Lead halide perovskites are promising scintillators for X-ray imaging due to high X-ray absorption efficiency, excellent luminescence, and facile synthesis. However, their ionic nature challenges simultaneous high photoluminescence efficiency and environmental robustness. This work introduces a multilevel encapsulation strategy: CsPbBr3 quantum dots (QDs) are sequentially coated with Cs4PbBr6, SiO2, and polydimethylsiloxane (PDMS). Cs4PbBr6 passivates surface defects, while SiO2 and PDMS provide barriers against moisture, heat, and radiation. The resulting CsPbBr3@Cs4PbBr6/SiO2/PDMS flexible films exhibit a photoluminescence quantum yield (PLQY) of 85%, outstanding mechanical flexibility, and durability under stretching, bending, and compressing. Films retain emission stability under elevated temperatures, prolonged X-ray irradiation, and extended water immersion. X-ray imaging demonstrates spatial resolution of 12 lp/mm, enabling distortion-free imaging of curved objects; superior water resistance allows long-term underwater imaging. This work highlights hierarchical encapsulation in balancing luminescence efficiency and stability, offering a pathway toward practical flexible perovskite scintillators.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025122101

Fe3O4@UiO/IKCN Photo-Fenton Degradation of Phenol-Containing Wastewater and Its Mechanism

Phenolic compounds, widely used in petrochemical, textile, and pharmaceutical industries, pose severe risks to ecosystems and human health due to their toxicity and persistence. Traditional Fe2+-mediated Fenton oxidation, while effective, suffers from external H2O2 and Fe2+ addition, low H2O2 utilization, narrow pH adaptability, and iron sludge generation. This study develops a g-C3N4-based heterogeneous photo-Fenton system that operates without external H2O2 or Fe2+ salts, exhibiting a wide pH range and minimal iron sludge. The synthesized Fe3O4@UiO/IKCN catalyst, under visible light, selectively reduces dissolved oxygen to H2O2 via a two-electron pathway and activates it to hydroxyl radicals (·OH), achieving efficient degradation of phenolic compounds. The integration of photocatalytic H2O2 formation and Fenton activation enables sustained production of oxidative species, demonstrating superior performance at circumneutral pH. This work provides new insights into the rational design of heterogeneous Z-scheme photo-Fenton catalysts and offers experimental and theoretical support for photocatalytic H2O2 synthesis and phenolic wastewater treatment.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3545-7

Magnetic Oxygen-Generating Robots via a Self-Healing Hydrogel-Based Modular Assembly Strategy

Magnetically driven hydrogel robots show promise in biomedical and underwater applications due to remote controllability, flexibility, biocompatibility, and chemical stability. However, limited functional integration restricts their adaptability. Here, a universal modular assembly strategy is introduced using a self-healing κ-carrageenan/polyacrylamide hydrogel embedded with magnetic particles, enabling free assembly of magnetic actuation modules. These modules construct soft robots with complex geometries and magnetization distributions, allowing diverse deformations under magnetic fields. The strategy further integrates photocatalysis by embedding Ru-Bi2CrO6 photocatalysts into functional modules, yielding an oxygen-generating robot. This robot exhibits flexible underwater movement via magnetically controlled oscillatory actuation, minimizing water agitation while supplying stable oxygen to specific aquatic environments. The photocatalytic oxygen evolution rate reaches 389.1 μmol g−1 h−1. The hydrogel skeleton suppresses particle aggregation and sedimentation, and facilitates magnetic recovery. This scalable and adaptable approach advances multifunctional soft robot design.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61113-4

Revealing Abnormal Micro- and Meso-Structure Evolution Mechanism of Porous Pyrolytic Carbon in TRISO Coated Fuel Particles under High-Temperature Treatment

Porous pyrolytic carbon (PPyC) serves as the buffer layer in TRi-structural ISOtropic (TRISO) fuel particles, providing storage for fission gases, preventing damage to outer layers, and absorbing stresses caused by fuel-kernel swelling. However, the changes of PPyC micro- and meso-structure at high temperatures remain insufficiently understood. In this study, PPyC fabricated by chemical vapor deposition was heat-treated from 1200 to 1600 °C and characterized across atomic-to-mesoscopic scales. Results show that the structure changes with temperature with a transition at approximately 1400 °C. Below 1400 °C, a decrease in Raman ID/IG ratio, narrowing of the graphite diffraction peak, and increased sp2 hybridization indicate progressive ordering associated with defect redistribution. Concurrent decreases in true density and mesopore volume, together with increased closed porosity, are consistent with partial conversion of open pores into closed pores. Above 1400 °C, increased ID/IG ratio, broadening of the diffraction peak near the rhombohedral graphite (101) reflection, and transition regions between crystalline and amorphous material observed by TEM indicate increasing structural disorder. Meanwhile, initially distinct PPyC particle boundaries blur and merge into broad, plate-like domains. Subsequent decrease in closed porosity and increase in mesopore surface area are consistent with partial connection of closed pores to the open-pore network. This work shows that intrinsic coupling between atomic-scale structural change and mesoscale pore connectivity provides a basis for assessing high-temperature structural stability of PPyC in TRISO fuel particles.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202510089

Removal Mechanisms of Fe3O4@MIL-100(Fe) for Microplastics in Water

Microplastics (MPs) are frequently detected in various water bodies, posing increasing environmental risks. This study synthesized magnetic Fe3O4@MIL-100(Fe) microspheres via an in-situ one-step hydrothermal method and investigated their adsorption removal mechanisms for polystyrene (PS) and polylactic acid (PLA) microplastics. The composite exhibited a core-shell structure with a high specific surface area of 848.6 m2·g−1. Adsorption kinetics showed that PLA followed a pseudo-second-order model, while PS fitted both pseudo-first-order and pseudo-second-order models. Equilibrium data for both MPs were well described by the Freundlich isotherm. Removal efficiencies for PLA and PS increased from 58.18% and 49.66% to 98.90% and 98.58%, respectively, as pH decreased, and from 64.24% and 21.58% to 97.05% and 94.63% with increasing ionic strength. The removal mechanism involved synergistic physical-chemical interactions: hydrogen bonding dominated for PLA, with some complexation, while π–π interactions and hydrogen bonding were primary for PS. The material demonstrated excellent reusability over multiple cycles. These findings highlight the potential of Fe3O4@MIL-100(Fe) for efficient removal of MPs from water, offering a novel approach for controlling emerging contaminants.

Journal of Fuel Chemistry and Technology2026DOI: 10.3724/2097-213X.2025.JFCT.0032

Effect of Coating Asphalt Softening Point on Pre-Oxidation Pathway and Sodium Storage Performance of Derived Hard Carbon

This study elucidates the nonlinear relationship between the softening point of coating asphalt and its oxidative cross-linking behavior, as well as the sodium storage performance of the derived hard carbon. Comparative analysis of asphalts with low (80 °C), medium (160 °C), and high (260 °C) softening points revealed that both the 80 and 260 °C asphalts incorporated a higher oxygen content (20%–25%) during oxidation, leading to the formation of a deeply cross-linked structure dominated by anhydride and ester groups. This effectively suppressed graphitization during carbonization, yielding hard carbon with large interlayer spacing, high disorder, and abundant closed pores. The derived hard carbon exhibited superior sodium storage performance: the initial charge capacities of EPOC-80 and EPOC-260 reached 314.7 and 306.6 mA·h/g, with first-cycle coulombic efficiencies of 81.3% and 79.3%, respectively, along with excellent cycling stability and rate capability. In contrast, the medium softening point asphalt (160 °C) showed limited oxygen incorporation (~5%) and insufficient cross-linking after oxidation, resulting in a densely packed hard carbon with smaller interlayer spacing (3.46 Å) and restricted sodium storage sites, which led to a significantly reduced capacity of 173.2 mA·h/g. This work provides new design principles and theoretical support for optimizing hard carbon anode structures through precise control of the precursor softening point.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025020901

Research Progress of Piezoelectric Coupled Photo-Electrocatalysis in Energy and Environmental Applications

The intensification of environmental pollution necessitates the development of efficient and sustainable remediation technologies. Piezoelectric-coupled photoelectrocatalysis and piezoelectric-coupled electrocatalysis, which convert mechanical energy into electrical energy and integrate with photoelectrocatalytic or electrocatalytic processes, have demonstrated significant potential for environmental remediation. By combining the piezoelectric effect of piezoelectric materials with photocatalysis or electrocatalysis, these technologies markedly improve the separation efficiency of photogenerated or electrogenerated electron-hole pairs, thereby enhancing pollutant degradation. This review explores the working principles of piezoelectric-coupled photoelectrocatalysis and electrocatalysis, highlighting their latest advancements in environmental remediation, including the degradation of organic pollutants and value-added conversions. It also addresses the challenges currently faced in applying these technologies, such as limitations in light transmittance, restricted light absorption ranges, rapid carrier recombination, and the short lifespan of electrodes in electrochemical systems. Finally, potential future research directions are discussed, emphasizing the need for improved material stability, scalable synthesis methods, and a deeper mechanistic understanding to bridge the gap between laboratory research and practical applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3850-3

Circularly polarized light activated chiral molybdenum-doped carbon dots for spatiotemporally synergistic antibacterial strategy

Chiral nanomaterials have attracted considerable attention for antibacterial applications due to their unique chiroptical properties. Here, we report a novel spatiotemporally precise synergistic photodynamic therapy (PDT) and photothermal therapy (PTT) strategy using circularly polarized light (CPL)-activated chiral molybdenum-doped carbon dots (L-Mo-CDs and D-Mo-CDs). These chiral carbon dots were synthesized using chiral tartaric acid as a precursor. Notably, D-Mo-CDs selectively respond to left-handed CPL (LCP), while L-Mo-CDs respond to right-handed CPL (RCP). Under CPL irradiation, D-Mo-CDs exhibit enhanced reactive oxygen species (ROS) generation and a higher photothermal conversion efficiency (PCE) compared to L-Mo-CDs. In vitro antibacterial assays demonstrate that D-Mo-CDs possess excellent bactericidal efficacy against both Gram-positive and Gram-negative bacteria. In vivo wound healing studies in a mouse model reveal remarkable therapeutic efficacy, attributed to reduced inflammation, accelerated angiogenesis, and enhanced collagen deposition. This work introduces a paradigm for utilizing chiral carbon dots in precision antibacterial therapy, addressing the limitations of conventional chiral nanomaterials such as poor biocompatibility and low photothermal conversion. The findings underscore the potential of metal-doped chiral carbon dots for advanced biomedical applications, offering a spatiotemporally controllable approach to combat bacterial infections without promoting resistance.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3879-5

Single-Stimulus Modulation of Multimodal Circularly Polarized Luminescence in Helical Ferroelectric Liquid Crystals

Stimuli-responsive circularly polarized luminescence (CPL) materials are pivotal for investigating excited-state chirality and advancing optoelectronic applications. However, achieving comprehensive modulation of chiroptical properties within a single system under a single external stimulus remains a significant challenge. Here, electric-field-responsive helical ferroelectric liquid crystals are developed by incorporating diverse chiral emitter dopants into the prototypical liquid crystal mesogen 2,3′,4′,5′-tetrafluoro-[1,1′-biphenyl]-4-yl 2,6-difluoro-4-(5-propyl-1,3-dioxan-2-yl)benzoate (DIO), known for its high dielectric anisotropy and multiple mesophases. By co-doping different types of chiral molecules with opposite handedness, a competitive chiral field is generated that responds differentially to the applied voltage, enabling continuous modulation of the helical pitch and reversible inversion of handedness. This work provides the integrated demonstration of single-stimulus regulation of on/off gating, magnitude tuning, and reversible sign inversion in a single liquid-crystal system, opening a pathway toward intelligent chiroptical materials.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202509051

Comparative Analysis of Greenhouse Gas Emission Factors for Recyclables from Municipal Solid Waste

Recyclables constitute a significant fraction of municipal solid waste (MSW) and hold substantial potential for resource utilization and greenhouse gas (GHG) emission reduction, contributing to carbon peak and carbon neutrality goals. However, reported GHG emission factors (EFs) for various recyclables vary widely across databases and literature, ranging from -19,110 to -125 kgCO2-eq·t⁻¹, with significant differences both among categories and within the same category, complicating accurate accounting. This study systematically integrates literature data on EFs for different recyclable categories, focusing on identifying factors causing intra-category variability. Data were collected from global databases (ecoinvent, WARM, CPCD, NAEI) and peer-reviewed studies over the past two decades, normalized to a functional unit of 1 tonne of recyclable. Statistical analysis (mean ± standard deviation) provided reference ranges for each category. Results show paper recyclables EFs range from -3,140 to 270 kgCO2-eq·t⁻¹, with corrugated cardboard and writing paper exhibiting higher absolute values than packaging paper due to structural strength and resource value. Plastic recyclables EFs range from -3,096 to -566 kgCO2-eq·t⁻¹, with EPS showing the highest reduction potential, followed by PET and PVC, then HDPE, LDPE, PP, and other plastics. Key influencing factors include functional unit definition, accounting scenario, system boundary, electricity emission factor selection, and calculation assumptions. The study recommends selecting EFs matching the specific accounting scenario and performing error analysis. Data gaps remain for LDPE, EPS, and other plastics, necessitating further experimental or field data. To enhance accuracy, calibration methods such as process-level and life-cycle inventory data calibration are proposed. This work provides a scientific basis for EF selection and calibration in GHG accounting of recyclables.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025021602

Electroactive Bacteria Accelerate the Degradation of Gallic Acid by Nano Iron Minerals and Its Mechanism

Iron-based catalysts are widely used in water pollution treatment due to their high stability and redox capabilities. However, conventional single-component iron-based catalytic systems face challenges such as slow reaction kinetics and low efficiency in generating reactive oxygen species (ROS) during organic pollutant degradation. In this study, three electroactive bacteria (Bacillus megaterium, Lactococcus lactis, and Shewanella putrefaciens) were selected to interact with nano-Fe3O4 to construct bacterial/Fe3O4 hybrid materials, accelerating the degradation of gallic acid. The results showed that bacterial interaction with Fe3O4 facilitated rapid electron transfer, enhancing gallic acid degradation. The bacterial/Fe3O4 hybrid materials exhibited significantly higher gallic acid degradation rates compared to Fe3O4 alone. This improvement was mainly attributed to the ability of electroactive bacteria to promote the formation of oxygen vacancies (OVs) on the Fe3O4 surface, accelerating electron transfer and subsequently enhancing the generation of ROS, including hydroxyl radicals, superoxide radicals, and singlet oxygen. Correlation analysis demonstrated a significant positive relationship between OVs and ROS generation, with hydroxyl radicals showing the highest correlation with the gallic acid degradation rate constant (r = 0.98), indicating its dominant role in gallic acid degradation; the hydroxyl radicals quenching experiment also verified its dominant role. Additionally, due to the temperature sensitivity of bacteria, the degradation rate of gallic acid reached its peak in the temperature range of 30–40 °C. This study reveals the mechanism by which electroactive bacteria enhance the catalytic activity of Fe3O4, providing a new strategy for its application in advanced oxidation technology for water pollution treatment.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025100102

Distribution and Risk Assessment of Per- and Polyfluoroalkyl Substances from Source Water to Tap Water in the Hubei Section of the Yangtze River Mainstream

Per- and polyfluoroalkyl substances (PFAS) are emerging contaminants of concern in China, and drinking water is a major exposure pathway. This study investigated 17 PFAS in surface water from 12 drinking water sources along the Hubei section of the Yangtze River mainstream during dry, normal, and wet seasons. Total PFAS concentrations ranged from 10.84 to 41.05 ng/L (dry), nd to 62.60 ng/L (normal), and 6.77 to 29.00 ng/L (wet). Predominant compounds were PFBS, PFOA, PFHxA, PFBA, and PFOS. Lake-type sources exhibited significantly higher concentrations than river-type sources, and dry and normal seasons showed higher levels than wet season. Compared to other Chinese sources, PFAS levels in Hubei were moderate, with fluorochemical plant inputs and population density as likely influencing factors. Ecological and health risk assessments indicated acceptable risks. In four selected water supply systems, PFAS distribution from source to tap was examined; PFOA, PFBA, PFHxA, and PFBS were dominant, and secondary water supply did not significantly introduce or remove PFAS. Health risks from tap water were within acceptable limits.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3787-x

Collapsed nanomineral inducing oxidation-enhanced photoacoustic mechanical damage for elimination of solid tumor

Circumventing the tumor's defensive antioxidant system and achieving precision cancer therapy remain major challenges in high-efficacy tumor treatments. Here, we propose a synergistic strategy integrating non-oxidative physical ablation and oxidative chemical intervention. An acid-responsive self-collapsing nanomineral PCSB is constructed, comprising poly(acrylic acid)-modified calcium sulfite (CaSO3) and a pH-responsive photoacoustic (PA) therapeutic molecule, aza-BDP. In the tumor acidic microenvironment, PCSB decomposes, releasing PA agents and SO2/Ca2+, thereby enabling combined non-oxidative mechanical damage from PA therapy and oxidative chemical damage from SO2 gas and Ca2+ ions. This dual-action approach effectively reduces resistance conferred by tumor antioxidant mechanisms and improves treatment precision. The study presents a synergistic physical-chemical strategy with significant potential for solid tumor elimination.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202511010

Construction of Pd-Ru/Silicalite-1 Bimetallic Catalysts and Their Performance and Mechanism for Complete Methane Oxidation

Complete catalytic oxidation of methane requires catalysts with high low-temperature activity, long-term thermal stability, and excellent water resistance for industrial application. This study constructed supported Pd-Ru/S-1 bimetallic catalysts using hydrophobic all-silica zeolite Silicalite-1 as support. Systematic catalytic performance tests evaluated methane oxidation activity, thermal stability, and water resistance, while multiple physicochemical characterizations revealed the reaction mechanism. Results showed that the catalyst with Pd/Ru ratio of 2:1 (2Pd-1Ru/S-1) exhibited optimal comprehensive performance, achieving T90 of 380 °C, maintaining 94% methane conversion at 375 °C for 48 h, and demonstrating excellent water resistance. Mechanistic studies indicated that PdO is the main active phase, and the reaction follows the Eley-Rideal (E-R) mechanism. The electronic synergy between Pd and Ru enhances the interaction between PdO and the support, effectively inhibiting sintering and water poisoning of active components. This study aims to provide a new strategy for industrial catalyst design to advance the industrialization of low-concentration methane catalytic technology, addressing its climate and pollution impacts.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(26)60643-3

Mechanistic Insights into CO Adsorption Modes on Pt-Based Supported Catalysts

The adsorption behavior and electron transfer mechanism of CO on Ptn/γ-Al2O3 catalysts (n = 4, 13) were systematically investigated using density functional theory (DFT) calculations, complemented by infrared (IR) spectroscopy, electron difference density (EDD), and charge decomposition analysis (CDA). The study reveals that Pt cluster size critically governs the adsorption configuration, electron transfer, and C–O vibrational frequency. For small Pt4 sub-nanometric clusters, highly unsaturated Pt atoms exhibit strong d-electron back-donation, leading to substantial filling of CO π* antibonding orbitals, significant weakening of the C–O bond, and a redshift in IR frequency. Conversely, large Pt13 clusters, characterized by dense structures and electron delocalization, exhibit weakened back-donation, enhanced C–O bonding, and a blueshift. The electron transfer intensity follows the order: linear < bridge < multi-terminal adsorption. Bridge adsorption is most sensitive to cluster size, displaying an IR blueshift of 81 cm−1 when Pt atoms increase from 4 to 13. Multi-terminal adsorption shows stable frequencies due to a 'saturation effect'. This study establishes a comprehensive correlation among Pt size, electronic structure, adsorption properties, and infrared response, providing atomic-scale theoretical guidance for designing efficient Pt-based catalysts with optimized CO adsorption strength and resistance to poisoning.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202512025

Stratification of Persulfate in Porous Aquifers and Its Impact on Remediation of Light Non-Aqueous Phase Liquid Contamination

Persulfate (PS) is a common oxidant in in-situ chemical oxidation (ISCO) for groundwater organic contamination, but its vertical concentration stratification may lead to inefficient remediation of light non-aqueous phase liquids (LNAPLs). To investigate the vertical stratification characteristics of PS in porous aquifers and its impact on LNAPLs remediation, static water column experiments and flowing water sand tank experiments were conducted. The migration behavior of PS under non-slow-release and slow-release conditions was compared, with Br− as a reference tracer and benzene, toluene, and xylene (BTX) as LNAPLs contaminants. Results showed that in static water columns, Br− exhibited weak vertical migration, short migration distance, and a low decay rate (0.009 d−1), consistent with a stable tracer. In contrast, PS showed strong vertical migration, with concentrations increasing with depth; under slow-release conditions, the concentration difference between the top and bottom of the column could reach two orders of magnitude. Br− migration was dominated by molecular diffusion (effective diffusion coefficient 2.2×10−9 m2·s−1), while PS migration was driven by both diffusion and density. Under slow-release conditions, the average PS decay rate was 0.072 d−1, slightly higher than the non-slow-release rate (0.059 d−1). In both column and sand tank experiments, BTX exhibited a distinct shallow-layer distribution, contrasting with PS. When the aquifer thickness is large, PS stratification limits its contact with LNAPLs contaminants, increasing remediation cost and difficulty. These findings provide theoretical reference for PS-based ISCO remediation of LNAPLs in porous aquifers.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202608006

Prediction of Available Phosphorus Formation and Analysis of Key Influencing Factors during Organic Waste Composting Using Stacking Ensemble Learning

Organic waste is a potential phosphorus reservoir, and understanding the dynamics of available phosphorus (AP) during its resource utilization is critical for efficient phosphorus recovery. Composting, a key route for organic waste valorization, involves complex transformations of phosphorus alongside organic matter degradation and humification. However, the long duration and high cost of composting experiments, coupled with multifactorial influences, hinder efficient elucidation of AP dynamics via conventional methods. This study compiled data from 33 publications, constructing a dataset of 647 samples. Data preprocessing included iterative imputation, one-hot encoding, and standardization. A stacking ensemble learning model was developed to predict AP generation during composting. The optimal ensemble comprised XGBoost and SVR as base learners and ElasticNet as the meta-learner, achieving R² values of 0.954 and 0.928 on training and test sets, respectively, with low overall error. SHAP analysis revealed that key factors influencing AP content, in descending order of importance, were feedstock type, bulking agent type, turning interval, pH, electrical conductivity (EC), and C/N ratio. Notably, livestock manure as feedstock and straw-based bulking agents contributed positively to AP predictions. Partial dependence plots indicated that lower pH and C/N ratios generally favored AP accumulation throughout composting. During the initial stage, higher moisture content and lower EC enhanced AP; in the thermophilic phase, higher temperatures corresponded to higher AP; and during cooling and maturation, maintaining moisture below 48% and C/N below 14, while extending composting beyond 43 days, promoted AP accumulation. This study demonstrates accurate AP prediction via stacking ensemble learning and identifies critical factors, offering support for optimizing phosphorus management in composting engineering.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202608020

Progress, Challenges, and Policy Insights for Collaborative Innovation Pilots on Pollution and Carbon Emission Reduction

This paper systematically reviews the progress and achievements of China's collaborative innovation pilots for pollution and carbon emission reduction, identifies existing problems, and proposes targeted recommendations. As of the first batch, 64 pilot units (21 cities and 43 industrial parks) have issued implementation plans, with overall smooth progress and notable phased outcomes. Most pilots have actively promoted institutional and mechanism innovations, achieving substantial advancements in key sectors and critical areas, and yielding replicable practices. However, challenges persist, including fragmented interdepartmental collaboration, insufficient alignment of management systems, funding shortages for synergistic projects, and inadequate technological support. Recommendations include intensifying awareness campaigns, establishing coordinated promotion mechanisms, accelerating management system implementation, advancing core technology R&D, conducting progress evaluations, and amplifying publicity. For the second batch, suggestions focus on expansion strategies, pilot types, and selection methods, emphasizing incremental tasks, diverse pilot subjects (from provincial to enterprise levels), and clear articulation of expected outcomes and demonstration targets. The paper underscores the need to transform local experiences into institutionalized frameworks, fostering a four-dimensional synergy of carbon reduction, pollution control, green expansion, and economic growth, thereby contributing to China's ecological civilization and global climate governance.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4007-x

Boosting Output Performance in Hydrogel-Based Moisture-Electric Generators via Tunable Solvent Interactions

Hydrogels, with their hydrophilicity, flexibility, and environmental friendliness, are highly desirable for moisture-electric generators (MEGs) that harness ubiquitous moisture to generate electrical energy. As the active material layer in MEGs, hydrogels play a crucial role in absorbing atmospheric moisture and converting chemical potential energy into electricity. However, the relatively low output current of the device and the instability of hydrogels pose challenges to the development of high-performance hydrogel-based MEGs. Herein, we introduce a straightforward, feasible, cost-effective, and versatile two-step solvent displacement strategy to overcome the barrier associated with the development of MEGs. Through tunable solvent interactions of glycerol and water, the moisture absorption capability and stability of the hydrogel can be improved, while promoting favorable ion migration. Such an effective processing route not only significantly boosts the output performances but also greatly improves the long-term durability of hydrogel-based MEGs. Notably, the current output and power density of the treated MEGs can increase by up to two orders of magnitude. The mechanisms behind the intriguing observation are investigated by various characterizations and theoretical calculations. This universal strategy holds promise to be extended to various hydrogel-based MEGs. Moreover, the MEGs can be used for energy harvesting, self-powered respiratory monitoring, and non-contact humidity detection. This work offers new opportunities for advancing green energy and self-powered technologies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4074-6

AI for Electrocatalytic Energy Conversion: From Atoms to Industry

Achieving carbon neutralization relies heavily on green hydrogen and electrochemical carbon-nitrogen cycles. However, the complexity of these systems and the cost of traditional Edisonian trial-and-error methods hinder rapid progress. Artificial intelligence (AI) has emerged as a transformative tool, enabling high-throughput data processing and dynamic adaptation. This review surveys the landscape of AI-driven electrochemistry, bridging the gap from atomic-scale design to industrial-scale implementation. Specifically, we focus on three areas: atomic structure-function decoding, fully automated “self-driving” laboratories, and macro-scale simulations for device durability. Furthermore, we elucidate the critical challenges in integrating AI with materials science. By mapping current trends and future directions, this work aims to unlock the full transformative potential of AI in next-generation energy storage and conversion.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(26)60663-9

Calcination Atmosphere-Engineered Cu/SiO2 Catalysts for Efficient Hydrogenation of Dimethyl Succinate to 1,4-Butanediol

The catalytic hydrogenation of biomass-derived dimethyl succinate (DMS) to 1,4-butanediol (BDO) is a pivotal route for producing high-value C4 chemicals in green chemistry. Cu/SiO2 catalysts are known for high selectivity in hydrogenating ester groups, with performance correlated to copper species microstructure. Although calcination critically defines this active structure, systematic influence of calcination atmosphere remains underexplored. Here, Cu/SiO2 catalysts were prepared via urea-assisted hydrothermal method and calcined under different atmospheres to elucidate effects on physicochemical properties and hydrogenation performance. Comprehensive characterization (N2 physisorption, FT-IR, H2-TPR, XRD, TEM, N2O pulse chemisorption, XPS, NH3-TPD) revealed that calcination atmosphere profoundly alters metal-support interaction, regulating dispersion and chemical state of copper species. Specifically, air calcination promoted stronger metal-support interaction, enhancing copper dispersion and increasing proportion of key active Cu+ species. Consequently, air-calcined catalyst achieved 92.37% DMS conversion and 64.15% BDO yield under optimized conditions (210 °C, 5.0 MPa, WHSV 0.6 h−1, H2/DMS molar ratio 100). This work underscores calcination atmosphere engineering as potent strategy for optimizing metal-support interactions in heterogeneous catalysts for efficient hydrogenation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4132-y

Pinning effect mitigating Jahn-Teller distortion of manganese-rich phosphate cathodes in sodium-ion batteries

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 Materials2026DOI: 10.1007/s40843-026-4175-3

Cracking-Directed Dynamic Liquid Bridging for Autonomous Microdroplet Recession and Enrichment

The precise manipulation of microdroplets (diameter < 20 μm) on solid substrates is critical for applications in environmental monitoring, targeted drug delivery, clinical diagnostics, and public health. A major challenge is contact angle hysteresis (CAH), which pins droplets and impedes mobility. Here, we introduce a crack-mediated capillary bridging strategy for efficient capture and directional transport of microdroplets. The approach employs a stretchable elastomeric substrate with island-like microstructures. Under longitudinal tensile stress, controlled fracture generates densely packed, directionally oriented surface cracks. These fissures induce localized capillary forces that counteract adhesion-induced resistance, enabling programmable droplet motion. Experiments capturing airborne pathogenic agents demonstrated a 14.2-fold enhancement in enrichment efficiency compared to flat surfaces. This work integrates fracture mechanics with capillary-driven fluid dynamics, establishing a framework for next-generation microfluidic systems. The findings offer promising avenues for biosensing, pollutant analysis, and interdisciplinary applications.