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WZ
Verified CAS / Academic Author48 Decoded Studies

Prof. Wanying Zhang

Anhui University of Science and Technology

Co-Affiliations:School of Materials Science and Engineering, Shaanxi University of Science and TechnologySchool of Materials Science and Engineering, Sun Yat-sen University

Research Publications & English Decoded Briefs

Showing 48 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4416-8

Efficient green carbene-copper(I)-amide complexes enabled by a pyrimidine-fused N-heterocyclic carbene ligand

Copper(I)-based carbene-metal-amide (CMA) emitters offer an earth-abundant alternative to precious-metal phosphors for organic light-emitting diodes (OLEDs), yet efficient green emission remains scarce due to limited π-extension and unbalanced charge-transfer characteristics of N-heterocyclic carbene (NHC) ligands. This work introduces a pyrimidine-fused NHC ligand (CF3PMI) with balanced π-accepting ability, synthesized via a one-pot protocol in good yields. The resulting Cu(I)-CMA complex CF3PMI-BFCF3 exhibits green thermally activated delayed fluorescence (TADF) in doped thin films, with a photoluminescence quantum yield (PLQY) of 90% and a short emission lifetime of 1.16 μs. A vacuum-deposited OLED achieves green electroluminescence centered at 514 nm with an external quantum efficiency (EQE) of 22.7%. Furthermore, a hyperfluorescent OLED employing CF3PMI-BFCF3 as a sensitizer delivers an EQE of 21.8%, green emission at 537 nm, and a narrow full width at half maximum (FWHM) of 30 nm. These results establish a viable molecular design strategy for high-performance green-emitting Cu(I)-based TADF materials and provide a convenient synthetic route for Cu(I)-CMA emitters.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4263-3

Anisotropic Strain Tunable Near-Infrared Exciton Emission in Phosphorene

Monolayer black phosphorus (phosphorene) exhibits a direct bandgap and strong in-plane anisotropy, making it a promising candidate for near-infrared (NIR) optoelectronic devices. However, the precise modulation of its excitonic emission via anisotropic strain remains insufficiently understood, particularly regarding the contrasting strain responses of phosphorene versus transition metal dichalcogenides (TMDs). Here, we combine experimental characterization with tight-binding (TB) modeling to elucidate the strain-dependent bandgap evolution in phosphorene. Using a four-band TB model, we derive the bandgap at the Γ point as E_g^BP = 4t1 + 2t2 + 4t3 + 2t5, with hopping parameters t1 = -1.220 eV, t2 = 3.665 eV, t3 = -0.205 eV, t4 = -0.105 eV, and t5 = -0.055 eV. Under tensile strain along the zigzag (ZZ) direction, the interatomic distance associated with t1 increases, reducing the magnitude of |t1|. Since t1 is negative, the bandgap increases, contrary to the behavior of monolayer MoS2, where tensile strain decreases the bandgap due to positive hopping parameters t11, t22, and t12. This anisotropic strain response enables selective tuning of NIR exciton emission. Our findings provide a quantitative framework for strain engineering in phosphorene-based NIR devices, highlighting the critical role of hopping parameter signs in determining bandgap modulation.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4177-3

Phototherapeutic Efficacy and Cell Death Pathways of Atomically Precise Chiral Au25 Nanoclusters in Tumor Therapy

Chirality profoundly influences tumor therapy by regulating key physiological processes, yet the link between chirality and therapeutic properties of atomically precise metal nanoclusters (NCs) remains poorly understood. Atomically precise Au25 NCs protected by chiral cysteine ligands (L-Au25(cys)18, D-Au25(cys)18, and Rac-Au25(cys)18) were constructed and systematically investigated to elucidate the association between chirality and tumor therapeutic performance. Although no significant difference in enzyme-like activity was observed among the three NCs, Rac-Au25(cys)18 exhibited enhanced reactive oxygen species generation under 808 nm laser irradiation, achieving superior phototherapeutic effects in both in vitro and in vivo tumor models. The chiral Au25 NCs induced distinct cell death pathways: L-Au25(cys)18 primarily triggered ferroptosis, D-Au25(cys)18 induced both ferroptosis and apoptosis, and all three NCs activated disulfidptosis. In vivo, tumor inhibition rates for L-Au25, D-Au25, and Rac-Au25 groups were 46.7%, 42.5%, and 68.3%, respectively, with no significant body weight fluctuations and minimal hepatorenal toxicity. Hematological and histopathological analyses confirmed favorable systemic biocompatibility. This work clarifies the correlation between chiral structures and tumor therapeutic performance of gold NCs, providing experimental insights and theoretical support for the design of novel chiral nanomaterials and optimization of precise tumor phototherapeutic strategies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4261-2

Breaking the Conductivity–Selectivity Trade-off in Nafion via Synergistic Molecular Modification for High-Performance Vanadium Redox Flow Batteries

Developing ion exchange membranes with both high proton conductivity and high selectivity is crucial for vanadium redox flow batteries (VRFBs). Commercial Nafion membranes suffer from severe vanadium crossover, while conventional additives often aggregate, disrupting ion domains and significantly reducing proton conductivity. To overcome this conductivity–selectivity trade-off, we propose a modification strategy based on molecular-level functional strategy. Two complementary additives, polyvinylpyrrolidone (PVP) and a fluoroalkyl-grafted polyoxometalate cluster (8FSiW11), are introduced into Nafion matrix to achieve precise, cooperative, regulation of ionic domains. PVP fills ion domains via hydrogen bonding and electrostatic interactions, constructing an efficient barrier against vanadium ions. Simultaneously, 8FSiW11 anchors at the hydrophilic/hydrophobic interface, providing additional proton sources and hopping sites to compensate for proton neutralization by PVP. The resulting hybrid membrane exhibits a proton/vanadium selectivity of 1×10^6 S min cm^-3, 8.6 times higher than commercial Nafion 212 (NR212), and enables VRFB energy efficiencies (EE) of 88.9% at 100 mA cm^-2 and 83.2% at 200 mA cm^-2. This work demonstrates the potential of synergistic molecular modification strategy to break conductivity–selectivity trade-off in membrane design for next-generation high-performance VRFBs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4378-6

Gold Clusterzyme-Engineered Bioelectronic Dressing for Precisely Guiding Scarless Tissue Regeneration

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 Materials2026DOI: 10.1007/s40843-025-3583-6

Janus-interface engineering enhances hydrogel integrated with ZIF-8@Co9S8 composite featuring concave pyramid patterns for efficient solar-driven water purification

Water scarcity and the increasing demand for clean water have driven the development of efficient solar desalination technologies. Interfacial solar steam generation (ISSG) is promising, yet its practical deployment is hindered by insufficient light harvesting and salt crystallization on photothermal surfaces. Here, we report a Janus hydrogel evaporator in which tubular Co9S8 nanocrystals are uniformly embedded in a polyvinyl alcohol (PVA) matrix with a concave pyramid pattern, creating a broadband light-trapping architecture (200–2500 nm) with 96% solar absorption. The top surface is further coated with hydrophobic zeolitic imidazolate framework-8 (ZIF-8), while the bottom retains intrinsic hydrogel hydrophilicity, establishing asymmetric wettability that sustains rapid water supply yet suppresses salt deposition. Under one-sun illumination (1 kW m−2), the Janus evaporator achieves an evaporation rate of 2.69 kg m−2 h−1 and a solar-to-vapor efficiency of 98.15%. Continuous operation in 3.5 wt% brine shows stable performance for 11 h without observable salt crystallization. This work offers an effective, durable pathway toward high-performance solar desalination and wastewater purification.

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/s40843-025-3603-2

Aerogels enable multifunctionality in GFRP composites: enhanced mechanical properties, thermal conductivity, and electromagnetic microwave absorption

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.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4022-7

Synthesis of transition metal nitride nanomaterials for electrocatalytic applications

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 Materials2026DOI: 10.1007/s40843-025-3788-9

Stable δ-FA(Cs)PbI3 Intermediate Enables Fabrication of Large-Area Perovskite Solar Modules in Ambient Air

Fabrication of large-area perovskite solar modules under ambient air conditions remains a critical challenge due to air sensitivity of perovskite intermediate phases during crystallization. Here, we introduce 2-iodoimidazole (IIZ) into the perovskite precursor, enabling the formation of an air-stable pure δ-phase intermediate, which, upon annealing, fully transforms into a highly oriented α-phase perovskite film with reduced defects and variability. Leveraging this approach, we achieve a stabilized power conversion efficiency of 20.9% for 927.5 cm2 perovskite solar modules with high reproducibility. The encapsulated modules meet stringent international photovoltaic testing standards (IEC61215:2021), demonstrating excellent stability under continuous operation, thermal cycling (−40 to 85 °C) and damp heat (85 °C and 85% relative humidity).

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3747-3

Laminated self-healing thermochromic gel for visualizing thermal management

Thermochromic soft materials are flexible functional materials that adaptively tune optical properties (transmittance, reflectance, or scattering) with temperature for thermal modulation. Herein, a laminated thermochromic gel (DEE-DA) is synthesized by encapsulating a thermochromic hydrogel (DA) between two hydrophobic ionogels (DEE) in a stacked configuration. The synergy of multiple dynamic bonds endows the DEE-DA gel with exceptional mechanical properties and remarkable self-healing capability (98.8% at 30 °C). More importantly, attributed to the temperature-responsive reversible cleavage and recombination of hydrogen bonds and borate ester bonds, DEE-DA gel demonstrates tunable transmittance with a light modulation efficiency of 85.45%. In response to the various external conditions, the gel can auto-adjust the optical properties to avoid sun irradiation or heat loss. Accordingly, the gel enables efficient dual-mode thermal modulation across a broad temperature range to realize thermal management. The research proposes gel thermochromism and laminated durability enhancement for adaptive materials in smart buildings and wearables.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202506019

Behavior and Mechanism of Uranium Removal from Acidic Uranium-Contaminated Groundwater by Sandstone Particle/Hydroxyapatite Composite

Acidic in-situ leaching of sandstone-type uranium deposits leaves residual acid and uranium in groundwater, posing environmental risks. This study investigated the feasibility of loading hydroxyapatite (HAP) onto aquifer sandstone particles for in-situ remediation. Sandstone particles were collected from an aquifer and reacted with a HAP-generating solution for 52 days to produce sandstone/HAP composite. Batch experiments examined the effects of initial pH, initial uranium concentration, composite dosage, and interfering ions on uranium removal. Results showed successful HAP loading on sandstone surfaces. At initial pH 3, uranium concentration 5 mg/L, composite dosage 3 g/L, and 24 h reaction, uranium removal reached 95.6%. Interfering ions suppressed removal in the order Fe3+ > Mn2+ > Ca2+ > Mg2+ > SO4^2-. Removal mechanisms included electrostatic adsorption, ion exchange, and dissolution-reprecipitation, with good stability of immobilized uranium. This work validates the concept of in-situ HAP loading in aquifers and provides a basis for practical application in acidic uranium-contaminated groundwater remediation.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202507059

Application of Immobilized White Rot Fungi in the Treatment of Anaerobic Digestion Sludge

Anaerobic digestion sludge (ADS) contains recalcitrant organic matter and exhibits poor dewaterability, posing challenges for disposal. This study evaluated the immobilization of white rot fungi (WRF) on four carriers—polyvinyl alcohol, cotton thread, wood chips, and sodium alginate—for ADS treatment. Cotton thread immobilization yielded the earliest and most sustained enzyme activity, highest biomass retention, and minimal biomass loss. WRF treatment achieved a 10.09% removal of total chemical oxygen demand (TCOD) and significantly disrupted extracellular polymeric substances (EPS), selectively degrading soluble EPS. To maintain fungal activity, periodic carrier replacement was required. Compared to the control, the experimental group showed an 8.9 mg·L−1 reduction in total protein and polysaccharide content in soluble EPS, a 27.33% decrease in capillary suction time (CST), and improved sludge dewaterability. These results demonstrate the potential of WRF for ADS treatment.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2024110703

River Ecological Health Assessment Based on Microbial Integrity Index and Water Quality Index

Urban river ecosystems are increasingly threatened by anthropogenic activities, necessitating comprehensive health assessments beyond conventional water quality metrics. This study evaluates the ecological health of the Zhongshan South Road reach in Wuhu, China, by integrating microbial community integrity with physicochemical parameters. Nine monitoring sections were established, considering land use, pollution sources, and seasonal hydrology. Over four seasons, eight water quality parameters and microbial indicators were systematically monitored. A Microbial Index of Biotic Integrity (M-IBI) was developed through candidate parameter screening, interference response analysis, and discriminant ability assessment. Core metrics included Chao1 index, Sobs index, and relative abundances of Acinetobacter and hgcl-clade genera. M-IBI scores were standardized and classified into health levels, with results compared against the Water Quality Index (WQI). Findings revealed seasonal M-IBI variation: winter > autumn > summer > spring, with downstream water quality superior to upstream. Spatial and seasonal patterns of WQI and M-IBI were largely concordant, though discrepancies arose from differential microbial responses to environmental factors and heightened sensitivity to human disturbance. The M-IBI approach demonstrated robust applicability for river health assessment, offering a sensitive, integrative tool for urban water management.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025010603

Identification, Risk Assessment, and Management Strategies for Emerging Pollutants in the Life Cycle of Lithium-Ion Batteries

The global production, inventory, and retirement of lithium-ion batteries are increasing, while new technologies and materials for safety introduce various binders, lithium salts, flame retardants, and solvents, some of which may be emerging pollutants (EPs). This study identifies 43 EPs across 6 categories in the entire life cycle of lithium-ion battery production. Electrolytes contain the most EPs, including per- and polyfluoroalkyl substances (PFASs) lithium salts and solvents, as well as organophosphorus flame retardants. Production emissions of 1,3-butadiene (1,3-BD), dichloromethane (DCM), and N-methylpyrrolidone (NMP), and release of ultra-short-chain PFASs such as bis(trifluoromethylsulfonyl)imide (NTf2) and trifluoromethanesulfonamide (TfNH2) from discarded batteries require attention. Health risk assessments at production and disposal sites show that DCM poses the highest carcinogenic risk at production sites, exceeding the EPA's basic carcinogenic risk value of 1×10−6 but below the critical value of 1×10−4, with non-carcinogenic risk below the EPA threshold of 1. At disposal sites, tris(1,3-dichloro-2-propyl)phosphate (TDCPP) poses the highest carcinogenic risk, below 1×10−6, while tri(2-chloropropyl)phosphate (TCPP) exhibits the highest non-carcinogenic risk, below 1. Comparison of domestic and international regulations highlights gaps in domestic regulations. Recommendations include tiered management of similar-function chemicals, research on alternatives for high-risk chemicals, implementation of clean production mechanisms, establishment of green product standards, and development of guidelines for managing EPs. This study comprehensively summarizes EPs in the lithium-ion battery life cycle, providing technical support for their management.

The Chinese Journal of Process Engineering2026DOI: 10.12034/j.issn.1009-606X.225200

Effect of Foaming Agent on the Performance of Phosphogypsum-Based Lightweight Ceramsite

Phosphogypsum, a by-product of wet-process phosphoric acid production, poses severe environmental and safety challenges due to its massive annual output and stockpiling. This study addresses the urgent need for resource utilization by employing phosphogypsum as the primary raw material, supplemented with ground granulated blast furnace slag, fly ash, and type II anhydrite. Two foaming agents, sodium bicarbonate (NaHCO3) and aluminum powder, were used to regulate pore structure, and their effects on ceramsite performance were compared. Under identical preparation conditions, aluminum powder yielded higher 7-day cylinder compressive strength than NaHCO3. Optimal formulations achieved a maximum cylinder compressive strength of 6.5 MPa with a bulk density of 1020 kg/m3, meeting lightweight aggregate concrete strength requirements. Aluminum powder produced closed pores, reducing bulk density to as low as 765 kg/m3, while NaHCO3 generated interconnected pores leading to higher water absorption. XRD, SEM, and BET analyses revealed that strength-contributing phases are calcium silicate hydrate and calcium aluminate hydrate; trace heavy metals (Mo, Ti) hinder their formation, causing structural defects. This work demonstrates a green, non-fired route for phosphogypsum valorization, offering environmental and economic benefits and a pathway for large-scale utilization.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3451-2

Organic Solar Windows with Full Visual Aesthetics

Visual aesthetics is a key metric of semi-transparent organic photovoltaics (ST-OPVs) for building-integrated solar windows, yet previous studies have primarily focused on the compromise between efficiency and transparency. This work addresses the overlooked aspect of full visual aesthetic control, particularly the bidirectional reflected color for architectural harmony, via designing ST-OPVs with double-sided ultra-thin Ag/TeO2 transparent electrodes. This design facilitates full-spectrum color tunability covering the whole standard color gamut of CIE coordinates on both surfaces, achieved simply by adjusting layer thicknesses. The resulting devices exhibit neutral transparency (16.6%–27.0% average visible transmittance) and competitive power conversion efficiencies (8.1%–9.2%). Additionally, the devices demonstrate strong flexibility, with flexibility-adaptive coloration and curvature-enhanced aesthetics. This work presents an ST-OPV design featuring full visual aesthetics and considerable performance, paving the way for commercialization of organic solar windows for building and vehicle integration.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3856-0

Photoelectrochemical Upgrading of Biomass-Derived Compounds over Hematite Nanorods Decorated with Bimetallic Zeolitic Imidazolate Frameworks

Replacing the kinetically sluggish oxygen evolution reaction (OER) with biomass oxidation at photoanodes offers a cost-effective and energy-efficient route for simultaneous hydrogen production and value-added chemical synthesis in a photoelectrochemical (PEC) cell. Here, titanium-doped hematite nanorods (Hem) decorated with CoNi bimetallic zeolitic imidazolate frameworks (ZIF) were prepared via room-temperature deposition and employed as photoanodes for 5-hydroxymethylfurfural (HMF) oxidation. Using 2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO) as a redox mediator in alkaline electrolyte, the CoNi-ZIF/Hem photoanode achieved a photocurrent density of 1.09 mA cm−2 at a low bias of 1.1 V vs. reversible hydrogen electrode (RHE). Experimental results and theoretical calculations reveal that CoNi-ZIF accelerates charge transfer and separation, and enhances TEMPO adsorption on the surface, benefiting PEC TEMPO-mediated HMF oxidation to 2,5-furandicarboxylic acid (FDCA). In a flow-cell reactor under 1 sun illumination, the photoanode achieved ~99% HMF conversion and ~98% FDCA yield within 2 hours. The photoanode also exhibited excellent performance for TEMPO-mediated oxidation of various aldehyde-containing biomass-derived compounds. This work demonstrates a rational design of hematite-based photoanodes for efficient biomass valorization coupled with hydrogen production.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61100-6

Spore-derived porous carbon with tailored heteroatom doping for anode of sodium-ion capacitors

Sodium-ion capacitors (SICs) are attractive for low-cost and safe energy storage, but their practical development is limited by sluggish Na+ storage kinetics and structural instability of anodes. Control of both bulk structure and surface chemistry can address these limitations. We report a heteroatom-rich porous carbon (HRPC) derived from spores via hydrothermal pretreatment, low-temperature carbonization, and acid-mediated functionalization. The optimized GLSHC-HNO3 anode exhibits hierarchical porosity and multi-element co-doping, enabling rapid ion/electron transport, improved electrolyte wettability, and abundant Na+ adsorption sites. Density functional theory calculations reveal distinct contributions of different heteroatom configurations to sodium adsorption. The HRPC anode delivers an ultrahigh reversible capacity of 446.1 mAh g−1 at 50 mA g−1, retains 237.3 mAh g−1 at 2 A g−1, and shows excellent cycling stability. A full SIC with a polyaniline-derived porous carbon cathode achieves an energy density of 114.4 Wh kg−1 at 290 W kg−1, 43.1 Wh kg−1 at 1450 W kg−1, and a maximum power density of 5800 W kg−1, with 84.3% capacity retention after 5000 cycles and nearly 100% Coulombic efficiency. This work establishes a scalable, sustainable route for converting biomass into high-value carbon anodes, providing a new pathway for high-performance sodium-ion energy storage.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61103-1

A Bidirectionally Frozen Carbon Aerogel Reinforced by Tetrapod ZnO Bridges for High-Performance Pressure Sensing

Flexible pressure sensors that simultaneously achieve high sensitivity, mechanical strength, and long-term stability remain challenging, particularly for biomass-derived carbon aerogels that are intrinsically brittle and prone to structural collapse. Here, we report a bidirectionally frozen carbon aerogel reinforced with tetrapod ZnO whiskers (T-ZnOWs) for high-performance pressure sensing. The aerogel is composed of cellulose nanofibers (CNFs), nitrogen-doped carbon nanosheets (NCs), and T-ZnOWs, which are reorganized into a mechanically stable, parallel lamellar structure via bidirectional freezing. T-ZnOWs act as rigid interlayer pillars, bridging adjacent carbon lamellae to form a 'layer-support' structure that enables efficient directional stress transfer, suppresses interlayer slippage, and promotes cooperative deformation. The nitrogen-doped carbon nanosheets introduce defect-rich conductive paths, enhancing piezoresistive response. Due to modulus mismatch between the supports and carbon layers, applied stress concentrates at layer/support interfaces, generating localized high-stress regions that amplify electrical signal changes. The aerogel is infiltrated with polydimethylsiloxane (PDMS) to form a conformal elastic encapsulating layer, improving durability. The resulting sensor exhibits a high gauge factor of 34.4, an ultrahigh sensitivity of 248.41 kPa−1 over a broad pressure range (0–19 kPa), fast response (24 ms) and recovery (69 ms) times, and stable operation over 5000 loading–unloading cycles. The sensor reliably detects physiological signals and joint motions, demonstrating potential for wearable and intelligent sensing applications. This work provides a strategy to improve the mechanical reliability and sensing performance of biomass-derived carbon aerogels.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(25)60629-3

Enhancing photocatalytic CO2 reduction with Z-scheme heterojunction Ag/Bi2MoO6/BiOBr composite films: Synthesis and mechanistic insights

This study reports the synthesis of a novel Z-scheme heterojunction composite film comprising Ag/Bi2MoO6/BiOBr via electrochemical processes, ion-exchange techniques, and subsequent photodeposition of silver nanoparticles. The incorporation of Ag nanoparticles exploits localized surface plasmon resonance (LSPR) effects and serves as an electron mediator, establishing a Schottky barrier that suppresses charge recombination. The optimized 1.5% Ag/Bi2MoO6/BiOBr film achieves a CO production rate of 13.65 μmol/(g·h) from photocatalytic CO2 reduction, significantly outperforming the unmodified Bi2MoO6/BiOBr film. Photocurrent and impedance analyses confirm enhanced charge separation in the Ag-modified composite. A non-linear relationship between Ag loading and photocatalytic efficiency was observed, with optimal performance at 1.5% Ag. The proposed Z-scheme mechanism elucidates the synergistic interactions among components, providing a scientific basis for rational design of advanced photocatalysts and immobilized systems for CO2 reduction. This work offers insights into the development of efficient, sustainable photocatalytic technologies for carbon capture and utilization.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025010804

Research Progress on Heterogeneous Fenton Technology Based on Carbon/Iron-Based Catalysts and Physical Field-Assisted Systems

Heterogeneous Fenton technology employs solid catalysts to activate H2O2, generating hydroxyl radicals (·OH) that oxidatively degrade organic pollutants. Among reported catalysts, iron-based materials are most prevalent but suffer from insufficient active sites and sluggish Fe(III)/Fe(II) cycling. Compositing iron with carbon materials increases active site density and accelerates Fe(II) regeneration, thereby enhancing catalytic efficiency. This review summarizes recent advances in carbon/iron-based heterogeneous Fenton catalysts, analyzing reaction mechanisms and characteristics for organic pollutant removal. It also discusses external energy field-assisted strategies (e.g., photo-, electro-, and ultrasound-assisted) that augment reaction kinetics. The paper concludes with perspectives on future development of carbon/iron-based Fenton-like materials, emphasizing the need for scalable synthesis and mechanistic elucidation. Key challenges include maintaining stability under continuous operation and achieving cost-effective production. The review highlights that carbon/iron composites with optimized interfacial properties can significantly improve H2O2 utilization and broaden pH applicability, addressing limitations of conventional Fenton processes. Future research directions include designing catalysts with tailored porosity and surface functionality, and integrating physical fields to synergistically enhance pollutant mineralization.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2026031703

Research Progress of Heterogeneous Electro-Fenton Process for Water Treatment: Key Factors and Optimization Strategies

Persistent organic pollutants (POPs) are ubiquitously detected in aquatic environments, and conventional treatment methods fail to achieve efficient degradation due to their structural stability and resistance to biological transformation. Heterogeneous electro-Fenton (HEF) technology, which generates H2O2 in situ via the two-electron oxygen reduction reaction (2e−ORR) and activates it to hydroxyl radicals (·OH) on solid catalysts, has emerged as a promising advanced oxidation process. HEF eliminates the need for external reagents, offers adjustable potential, and operates effectively across a broader pH range than classical Fenton, mitigating iron sludge production and secondary pollution. However, catalytic efficiency is significantly influenced by catalyst properties, solution pH, current density, and electrolyte type. Current research focuses on two main strategies: (1) developing high-performance bifunctional catalysts that simultaneously enhance 2e−ORR selectivity and H2O2-to-·OH conversion efficiency, and (2) constructing dual-cathode systems that spatially separate H2O2 generation and activation, thereby improving reaction synergy, reducing metal leaching, and enhancing electron utilization. Additionally, HEF can be coupled with electro-oxidation, persulfate activation, and UV irradiation to exploit synergistic effects, enhancing mineralization efficiency and reducing energy consumption. This paper systematically reviews the reaction mechanisms, key influencing factors, and optimization strategies of HEF, aiming to provide a theoretical basis and technical reference for its engineering application.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025010607

Multi-media Distribution, Source Apportionment, and Risk Assessment of Polycyclic Aromatic Hydrocarbons in the Forest-Grassland Transition Zone of Inner Mongolia

This study investigated the occurrence, sources, and ecological risks of polycyclic aromatic hydrocarbons (PAHs) in soil, litter, and bark samples collected from the forest-grassland transition zone of Inner Mongolia. A total of 12 PAHs were detected in soil, with concentrations ranging from 34.9 to 465.3 ng·g⁻¹ (mean 168.8 ng·g⁻¹), predominantly 3–5 ring compounds. Litter contained 14 PAHs at concentrations between 106.4 and 2262.5 ng·g⁻¹ (mean 465.1 ng·g⁻¹), dominated by 3- and 4-ring PAHs. Both living and dead bark exhibited 14 PAHs, with concentration ranges of 119.2–240.0 ng·g⁻¹ and 123.3–241.6 ng·g⁻¹, respectively, mainly composed of 4-ring PAHs. Spearman correlation analysis revealed no significant correlations among PAH concentrations across the three media (P > 0.05). Source apportionment using diagnostic ratios and principal component analysis indicated that soil PAHs primarily originated from biomass, coal, and gasoline combustion; litter PAHs from petroleum volatilization and coal/natural gas combustion; and bark PAHs from petroleum volatilization and fossil fuel combustion, with high-molecular-weight PAHs dominating. Ecological risk assessment using the risk quotient (RQ) method showed that soil PAHs posed low overall ecological risk, though certain individual PAHs exhibited higher risk. The toxic equivalent (TEQ) method indicated that dead bark was the primary accumulation medium with high carcinogenic contribution, posing elevated ecological risk. Although litter and living bark had lower PAH concentrations, their long-term accumulation effects warrant attention. These findings provide crucial scientific evidence for understanding the environmental behavior and potential risks of PAHs in cold, high-latitude regions of northern China.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025020501

Differences in Hexabromocyclododecane Isomers and Microbial Remediation: A Review

Hexabromocyclododecane (HBCD), a brominated flame retardant widely used in building insulation, plastics, and textiles, has been banned but persists in the environment and accumulates in biota. Its three main diastereomers (α-, β-, γ-HBCD) exhibit distinct physicochemical properties, leading to differences in half-life, toxicity, environmental distribution, and bioaccumulation. Microbial remediation offers advantages over chemical and physical methods, including fewer residues, cost-effectiveness, and shorter remediation cycles due to rapid microbial growth. Microorganisms degrade HBCD via debromination, hydroxylation, dehydrobromination, and combined pathways, with isomer transformation observed in environmental microbial communities. This review synthesizes current knowledge on HBCD isomer differences and microbial degradation mechanisms, emphasizing the importance of understanding these processes to mitigate environmental pollution and human health risks. Key findings include the predominance of γ-HBCD in technical mixtures, the higher bioaccumulation potential of α-HBCD, and the isolation of specific degrading strains such as Pseudomonas sp. and Citrobacter sp. Y3, which can mineralize HBCD under aerobic or anaerobic conditions. The paper also discusses the influence of environmental factors on degradation efficiency and the potential for bioremediation strategies in contaminated soils and sediments.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202605023

Spatiotemporal Heterogeneities of Carbon Emissions and Driving Factors of Railway Sector in China

Identifying the characteristics of carbon emissions and driving forces of the railway sector is essential for formulating effective measures to develop a green and low-carbon railway industry. This study systematically evaluated the direct and indirect carbon emissions from 2016 to 2021 generated by the railway sector of China, and analyzed the spatiotemporal dynamic changes of the carbon emissions. On this basis, by adopting the LMDI model, the key factors affecting the carbon emissions of railway sector were discerned. Moreover, the variations in the dominant factors of the carbon emissions over time, and the spatial heterogeneities in the dominant factors of the carbon emissions of the 18 railway bureaus, were analyzed. The results show that: 1) During the periods from 2016 to 2021, the carbon emissions of China's railway sector showed an overall upward trend, increasing from 57.7486 million tons to 64.2084 million tons, by 11.2%. The Shanghai Bureau, Beijing Bureau, Zhengzhou Bureau, Chengdu Bureau and Guangzhou Bureau substantially contributed to the increases of railway carbon emissions. In spatial, the carbon emissions of the 18 railway bureaus were characterized by lower emissions in the west and higher emissions in the east, mainly due to the regional differences in the socio-economic development, industrial structure and population density; 2) During 2016 to 2021, the decline in energy consumption intensity reduced the carbon emissions of the railway sector by 18.8654 million tons, while the changes in carbon emission intensity, economic benefits of per unit passenger and freight turnover, and operating capacity led to an increase of a sum of 25.3252 million tons of carbon emissions. When decomposing the contributions of each factor by sub-periods, it can be found that the impacts of these factors on the carbon emissions changed over time. Only the factor of carbon emission intensity showed a promoting effect in all sub-periods, the other three factors, as energy consumption intensity, economic benefits of per unit passenger and freight turnover, and operating capacity, had a conversion between promoting and inhibiting effects. 3) The dominant factors of carbon emissions across the 18 railway bureaus exhibited spatial heterogeneity. For instance, operating capacity was the main promoting factor for bureaus like Taiyuan, Beijing, Lanzhou, Nanning, Hohhot, Urumqi, and Qinghai-Tibet, while energy consumption intensity was the main inhibiting factor. For Shanghai, Kunming, Wuhan, Chengdu, Xi'an, Zhengzhou, Jinan, Shenyang, Nanchang, and Guangzhou, economic benefits per unit turnover was the main promoting factor, with energy consumption intensity as the main inhibiting factor. For Harbin, energy consumption intensity was the main promoting factor, while economic benefits per unit turnover was the main inhibiting factor. 4) The railway sector can reduce carbon emissions by optimizing transport organization to reduce empty car rates, optimizing energy structure, and retrofitting infrastructure for energy efficiency, while implementing differentiated emission reduction strategies tailored to each bureau's characteristics.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202605024

Construction and Empirical Study of a Panoramic Carbon Flow Model for High-Speed Railway Bridge Construction

The refined quantification of carbon footprint in engineering construction projects is critical for formulating targeted carbon reduction strategies during the materialization phase. This study integrates material flow analysis (MFA) with the emission factor method to establish a panoramic carbon flow model for engineering projects. Construction activities are categorized into processing and construction, and office and daily operations, clarifying material and carbon flow relationships within the system boundary and with external systems. Empirical analysis was conducted on the Hejiawan Bridge of Section 11 of the Xiyu High-Speed Railway. Results show that the total carbon flow amounts to 27,482,432.11 kg CO2eq, with direct carbon flow (fuel oil, gasoline) accounting for 7.6% and indirect carbon flow (products, transportation, electricity) accounting for 92.4%. From the material flow perspective, the total carbon flow comprises product carbon flow (72.88%), resource and energy carbon flow (25.73%), transportation carbon flow (1.04%), waste carbon flow (0.35%), and service carbon flow (0.01%). In terms of activity scope, construction-related carbon flow accounts for 99.17%, while office and daily operations account for 0.46%. Two indicators, material consumption carbon flow rate and energy consumption carbon flow rate, are proposed for the first time. Comparative analysis of five girder bridges reveals that the Hejiawan Bridge has a material consumption carbon flow rate of 3.91 kg CO2eq/kg, ranking highest among similar bridges, while its energy consumption carbon flow rate is 13.40 kg CO2eq/kg ec, at a medium level. The assessment indicates relatively high material consumption, suggesting potential for carbon reduction through structural and geological optimization.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025030303

Degradation of Emerging Organic Pollutants in Water Matrix over Modified Graphitic Carbon Nitride Based Photocatalytic Coupling Systems

Emerging organic pollutants (EOPs) represent a class of toxic and hazardous chemicals characterized by ecotoxicity, environmental persistence, and bio-accumulation. Conventional water treatment processes have proven inadequate in eliminating these EOPs, leading to their accumulation in aquatic ecosystems and posing severe threats to the health and safety of aquatic organisms. Consequently, the development of efficient technologies for the complete elimination of EOPs from water matrix is of great importance. Recently, carbon nitride (CN)-based photocatalytic degradation technologies have been extensively utilized for the efficient treatment of organic pollutants in water environments due to their advantages of being green, efficient, and cost-effective. Furthermore, the catalytic activity of CN-based photocatalytic systems can be significantly improved and energy recovery can be achieved via coupling these systems with other advanced oxidation technologies. This review provides a critical review of the modification strategies for CN photocatalytic materials and their application in photocatalytic coupling systems toward EOPs elimination. Moreover, the opportunities and challenges on the photocatalytic coupling systems have been discussed.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202606008

Research Advances in Resin-Enhanced Electrosorption for Water Treatment

Resin-enhanced electrosorption for water treatment significantly improves ion adsorption efficiency and selectivity through synergistic effects, making it a research hotspot in the water treatment field. This technology provides an innovative solution to the bottlenecks of kinetic lag and insufficient selectivity by modulating electrode-solution interface behavior in multiple dimensions. Current technological advances include the following: a simple integration method enables desalination efficiency to exceed 92.3%; resin-coated composite electrodes eliminate the co-ion effect and achieve a 42% increase in total salt adsorption capacity; resin-derived porous carbon electrodes with tunable pore structures possess three to five times the adsorption capacity of commercially available activated carbon; and by enhancing solution convection and electrophoretic convection, the resin-filling strategy achieves a high desalination rate of (670 ± 20) mg/(L·h). Studies have demonstrated that different material combinations can achieve targeted optimization of adsorption performance based on specific water quality characteristics. Future research directions may focus on: developing intelligent resin materials with electromagnetic responsiveness; constructing a multi-scale structural design theory for resin-electrode systems; and establishing a cross-scale model integrating electrochemistry, fluid dynamics, and interface science for comprehensive analysis. In particular, in-depth studies are needed on the dynamic behavior of resin-based flow electrodes under electric/magnetic field regulation, as well as the precise construction of catalytic sites on the resin surface. This review aims to promote the widespread application and efficient practice of this technology in water treatment, providing a theoretical foundation and scientific basis for the future development of high-efficiency, selective, and stable electrosorption technologies.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3813-y

Ultrasound-Activated Nanomaterials for Sonothermal Therapy: Mechanistic Insights and Biomedical Applications

Sonothermal therapy (STT) is an emerging noninvasive energy-based modality that leverages deeply penetrating ultrasound to activate engineered nanomaterials, converting acoustic energy into localized heat. This review systematically delineates four coupling routes between ultrasound and nanomaterials: thermoelastic, thermoviscous, and plasmonic heating; nonradiative recombination and acousto-electric coupling; thermal vibrations in carbon and conjugated systems; and cavitation heating. Design principles for STT nanomaterials are established, with guidance for pre-, intra-, and post-treatment phases, and linked to applications in tumor ablation, wound infection and healing, and implant-associated infection and regeneration. Hybrid platforms integrating STT with sonodynamic or sonocatalytic reactive oxygen species generation are discussed. Key translational barriers include the lack of quantitative and standardized metrics for conversion efficiency, the need for scalable and reproducible manufacturing aligned with Good Manufacturing Practice, limited in vivo biodistribution and biosafety data, and weak links from preclinical models to clinical endpoints. An integrated framework connecting mechanism, material design, and therapeutic outcome is proposed to guide the development of next-generation STT nanoplatforms for treatment-resistant disease.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3790-5

Defect and Crystal Field Engineering Enables High Efficiency and Anti-Thermal Quenching in Cr3+ Doped Rigid Garnet Phosphors for Multifunctional Optoelectronics

Near-infrared (NIR) phosphors with high quantum efficiency (QE) and thermal robustness are critical for phosphor-converted light-emitting diodes (pc-LEDs). Here, a Cr3+-activated Lu2BaAl4SiO12 (LBASO) garnet phosphor is engineered via chemical unit cosubstitution of [Ba2+-Si4+] for [Lu3+-Al3+] in Lu3Al5O12 (LuAG), inducing a strong crystal field that yields NIR emission at 705 nm. The optimized LBASO:0.07Cr3+ exhibits an internal quantum efficiency (IQE) of 84.82% and external quantum efficiency (EQE) of 46.02%. Notably, it demonstrates anti-thermal quenching (ATQ) with 126.03% of its initial intensity at 498 K under 442 nm excitation, attributed to a wide band gap, weak electron-phonon coupling, defect trap energy levels, high structural rigidity, and optimized electron population distribution. A NIR pc-LED fabricated with this phosphor achieves an output power of 134.99 mW and photoelectric conversion efficiency of 11.4% at 100 mA drive current. These results underscore the potential of LBASO:Cr3+ for applications in plant lighting, night vision, and nondestructive analysis.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202511020

Scenario Simulation and Case Study of Oil Spill Diffusion from Oil Pipelines Crossing Rivers

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 Technology2026DOI: 10.1016/S1872-5813(26)60678-0

Oil Production from Thermal Liquefaction of Polyethylene in Low-Pressure Superheated Methanol

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.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025031202

Electron Transfer Regulation and Nitrogen Removal Pathways in Constructed Wetland with Manganese Ore and Activated Carbon Coupling Microbial Fuel Cell

Manganese-rich constructed wetlands (CWs) have emerged as an effective strategy for enhanced nitrogen removal, yet current understanding of their denitrification mechanisms remains limited to speculative interpretations of microbial community structures. This study developed a novel CW-MFC system integrating manganese ore (MO) and activated carbon (AC) substrates with microbial fuel cell (MFC) technology to investigate the manganese-nitrogen coupling biochemical metabolism. It was systematically evaluated the effects of influent organic carbon concentrations on nitrogen removal performance and elucidated the mechanisms of electron transfer and their coupling with nitrogen removal pathways through multi-dimensional analyses, including functional enzymes, extracellular polymeric substances (EPS) characterization, intra-/extracellular electron transfer-related gene expression, and electron transport activity. Results showed that the synergistic integration of MO, AC, and MFC configuration significantly enhanced nitrogen removal efficiency, with ammonium removal reaching up to 5.5 times that of the control group. The functional substrates notably upregulated enzyme activities of nitrogen transformation in biofilms while stimulating nitrification and anammox processes at the anode. EPS analysis revealed that Mn2+ derived from manganese reduction was captured by EPS, thereby facilitating the manganese cycling. Concurrently, the increased abundance of electron transport chain (ETC) and extracellular electron transfer (EET) genes, coupled with increased cytochrome C (Cyt-C) concentration and activity, confirmed enhanced EET performance. It indicated that the coordinated EET network among electrodes, microorganisms, MO, and AC serves as critical electron mediators for nitrogen transformation. This study provides mechanistic insights into manganese-carbon coupled CW-MFC systems regarding nutrient removal, biogeochemical cycling, and electron transfer dynamics, advancing fundamental knowledge for the development and application of manganese-rich constructed wetland technology.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025040701

Exploring the Impact of Goaf Water on Maize Growth from a Microbial Perspective

Goaf water (GW), formed by water accumulation in coal mine goafs, poses ecological risks due to its pollutant content. While previous studies focused on physicochemical properties, microbial community dynamics and their effects on plants remain underexplored. Maize (Zea mays L.) is sensitive to water quality changes, making it a suitable model for ecological risk assessment. This study investigated GW samples from a coal mine in Yangquan, Shanxi Province, using metagenomic sequencing to analyze microbial communities and maize seed cultivation experiments to evaluate growth effects. Results demonstrated that GW significantly inhibited maize growth, particularly lower-depth samples. Microbial diversity and composition varied markedly with depth; lower-depth GW enriched distinct microbial species potentially influencing plant growth. These microbes may regulate plant development through metabolic pathway modulation. The study elucidates the complex impacts of GW microbial communities on plant growth and emphasizes their importance in ecological risk assessment of GW.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202607005

Kinetic and Thermodynamic Analysis of Municipal Sludge Combustion Characteristics

To optimize municipal sludge incineration and enhance disposal efficiency, sludge from the First Sewage Treatment Plant in Chengdu was analyzed via synchronous thermal analysis (TG-DTG-DSC) in air at 20 K/min. The combustion process comprised four stages: moisture evaporation (35–150 °C), volatile combustion (150–400 °C), fixed carbon combustion (400–600 °C), and burnout (600–1000 °C). Ignition and burnout temperatures were 220.7 °C and 605.9 °C, respectively, with a comprehensive combustion characteristic index of 6.32×10⁻⁸ %²/(min²·K³), indicating good stability. Kinetic analysis using Coats-Redfern (CR) integral and Achar-Brindley-Sharp (ABS) differential methods showed deviations below 15%, confirming CR reliability. Moisture evaporation and volatile combustion followed first-order models (F1) with activation energies of 52.24 and 48.81 kJ/mol, while fixed carbon combustion and burnout followed second-order models (F2) with activation energies of 192.38 and 102.27 kJ/mol. Thermodynamic parameters (ΔH: 49.06, 43.59, 185.94, 95.00 kJ/mol; ΔS: -148.36, -211.63, -30.74, -201.38 J/mol·K; ΔG: 105.76, 176.52, 209.74, 271.04 kJ/mol) revealed negative entropy and positive Gibbs free energy across all stages, indicating external energy dependence, with the highest demand in the burnout stage. These findings provide a theoretical basis for optimizing incineration process parameters and energy recovery.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4000-1

Green Solvent Engineering and Additive Modulation in Stabilized Black FAPbI3 Perovskite Single Crystals for High-Performance Photodetectors

Formamidine lead-based perovskites (FAPbI3) exhibit significant potential in optoelectronic applications. Nevertheless, they encounter challenges related to δ-phase instability and reliance on toxic solvents. In this study, we present a green solvent-additive synergy strategy that employs γ-valerolactone (GVL) in conjunction with reductive acids like oxalic acid (OA), to stabilize α-FAPbI3 single crystals (SCs). GVL enhances the stability of the precursors through the formation of FA+-GVL hydrogen bonds and high-valence [PbIx]2−x clusters, resulting in ambient-stable α-phase SCs, yielding a marked improvement in stability compared to SCs prepared with the toxic solvent γ-butyrolactone (GBL). Additive modulation demonstrates that H+ and reductive groups play a critical role in regulating crystallization, suppressing the δ-phase by promoting FA+ dissociation and inhibiting MA+ deprotonation. A solvent-involved intermediate, δ-FAPbI3-GVL, has been identified; this intermediate evolves into α-FAPbI3 at a low temperature of 60 °C, thereby reducing the energy barriers associated with the α to δ phase transition. In contrast, non-reductive acids and reductive ionic liquids do not inhibit δ-phase formation, with the latter even promoting the crystallization of pure δ-FAPbI3. By utilizing low-volatility OA as an additive, optimized FA0.9MA0.1PbI3 single crystal thin films exhibit a low defect density of 8.3 × 10^11 cm−3. Subsequently, a photodetector was fabricated. Under zero bias voltage and 780 nm illumination, the device exhibited a responsivity of 14.5 mA/W, a detectivity of 3.75 × 10^10 Jones, and a response speed of 149/65 μs. Moreover, without any encapsulation, the device’s performance diminished by only 17% after 30 days of storage in ambient conditions, indicating remarkable stability.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(26)60752-9

Mechanistic Insights into Methanol Steam Reforming on PdCu(111) and PtCu(111) Bimetallic Catalysts

Methanol steam reforming (MSR) is a pivotal process for efficient hydrogen production. This study employs density functional theory (DFT) calculations to comparatively analyze the MSR reaction mechanism on PdCu(111) and PtCu(111) bimetallic surfaces. The investigation unveils how alloying modulates reaction pathways and overall catalytic performance. Notably, Cu sites stabilize adsorption of OH and CH2O species, whereas Pd/Pt sites exhibit preferential affinity for CO. This spatial site separation facilitates progression along the formate pathway. PdCu(111) demonstrates superior overall catalytic performance compared to PtCu(111), with water dissociation identified as the rate-determining step (RDS), featuring an activation energy of only 0.74 eV. The bimetallic synergy breaks the inherent contradiction between activity and selectivity of monometallic catalysts: Cu sites serve as a source of hydroxyl groups, while Pd/Pt sites enhance C–H bond cleavage efficiency, ultimately enabling high methanol conversion alongside low CO formation. From the perspectives of electronic structure and geometric configuration, this study establishes a theoretical framework to guide rational design of high-performance bimetallic catalysts for MSR.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025042502

Comparative Effectiveness and Mechanism of Antibiotic Degradation by B/N-Doped Biochar-Supported Fe3S4 Activating Peroxydisulfate

Rice husk biochar (BC) was modified with boron (B) and nitrogen (N) doping and loaded with Fe3S4 to fabricate B-BC@Fe3S4 and N-BC@Fe3S4 catalysts for peroxydisulfate (PDS) activation and enrofloxacin (ENR) degradation. Characterization via SEM, BET, XRD, Raman, and XPS confirmed successful heteroatom incorporation and uniform Fe3S4 dispersion, enhancing specific surface area and defect sites. Degradation experiments showed that B-BC@Fe3S4 and N-BC@Fe3S4 achieved ENR removal efficiencies of 90.72% and 91.89%, respectively, significantly outperforming unmodified BC@Fe3S4 (82.21%). Mechanistic studies revealed that PDS activation proceeded via Fe3S4-mediated electron transfer generating radical species (SO4•−, •OH, O2•−) and via B/N functional groups promoting non-radical singlet oxygen (1O2) formation. Notably, N-BC@Fe3S4 exhibited superior resistance to Fe3+ leaching and greater environmental adaptability under varying pH, anion, and humic acid conditions. These findings demonstrate that B/N-doped biochar-supported Fe3S4 are effective catalysts for PDS activation, offering promising potential for antibiotic removal from real wastewater matrices.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025041505

Characteristics and Causes of PM2.5 Changes in the Fenwei Plain from 2013 to 2020

To combat severe air pollution, China has implemented a series of air pollution control action plans since 2013, effectively alleviating PM2.5 pollution. However, PM2.5 concentrations in most cities within the Fenwei Plain still exceed national standards. This study systematically evaluates PM2.5 concentration changes across two policy phases (2013–2020) using the Community Multiscale Air Quality (CMAQ) model, quantifying contributions of meteorology and emissions, and analyzing sectoral source changes. Results show that annual average PM2.5 concentration declined cumulatively by 19% during 2013–2020. In the first phase (2013–2017), regional PM2.5 decreased by 3% annually, with most improvement in winter; however, due to unfavorable meteorology, concentrations increased in Xi'an and Xianyang. In the second phase (2017–2020), PM2.5 declined by an additional 16%, with more effective control measures, particularly in spring and autumn. Emission reductions dominated in both phases, with stronger effects in the second phase (−8 μg·m−3), significantly outweighing adverse meteorological contributions (+3.5 μg·m−3). Nevertheless, many cities still face challenges from unfavorable meteorology, highlighting the need for future policies to account for meteorological influences. Emissions from industrial, energy, and agricultural sources decreased significantly across both phases. However, during winter heating periods, residential emissions emerged as a source equal in importance to industrial emissions, becoming a key target for future emission controls.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025042504

Effect of Co-aging with Common Ions and Humic Acid on the Control of Phosphorus Release from Sediment by the Combination of Lanthanum-Modified Bentonite and Vallisneria natans

This study investigated the effect of co-aging with common cations/anions and humic acid (HA) on the combined use of Vallisneria natans (VN) and lanthanum-modified bentonite (LMB) for controlling phosphorus (P) release from sediment. Results showed that co-aging significantly reduced the phosphate adsorption capacity of LMB, with the maximum unit adsorption capacity decreasing by 33.8% compared to the unaged material. Under the combined application of VN and unaged LMB, P in sediment could still be released into pore water via dissimilatory iron(III) reduction mediated by iron-reducing bacteria and chemical reduction of iron(III) induced by sulfate-reducing bacteria metabolites, subsequently migrating to overlying water. However, the combined treatment effectively inhibited P release, achieving an average reduction efficiency of 57.1% for dissolved reactive phosphorus (SRP) in overlying water and 74.0% for labile P in sediment (measured by DGT) at an LMB dosage of 89 g·m−2. Co-aging with common ions and HA diminished the P control efficiency of the combined treatment, primarily due to reduced phosphate adsorption capacity of LMB. Therefore, mitigating the negative effects of co-aging is crucial for enhancing the long-term P control performance of the VN-LMB combined technology.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4084-1

Ultrafast dual-pathway room-temperature synthesis of 0D inorganic metal halides K3SbCl6 with near-unity photoluminescence quantum yield

Alkali metal halides such as KCl are typical insulators with broad bandgaps, exhibiting poor luminescence. Ion doping can enhance their luminescence, but the mechanism of ultrafast diffusion and structural evolution remains unclear. Here, Sb3+ was doped into a KCl matrix via a room-temperature grinding route. Varying Sb3+ concentration induces a structural evolution from KCl:Sb3+ to 0D inorganic metal halides (IMHs) K3SbCl6. The resulting K3SbCl6 exhibits broad-spectrum yellow emission with near-unity photoluminescence quantum yield (PLQY). The luminescence mechanism is attributed to the 3P1→1S0 transition of Sb3+ ions. Furthermore, a room-temperature solid-liquid interface diffusion method enables ultrafast single-crystal growth of K3SbCl6 in only 20 seconds, with stable luminescence. The material demonstrates excellent temperature sensing performance in the 50–310 K range, achieving a maximum relative sensitivity of 9.99%/K. Additionally, K3SbCl6 shows application potential in information encryption, flexible composite fluorescent films, and white light-emitting diodes. This study provides new insights into ultrafast synthesis of high-performance luminescent materials.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4035-5

Trace Sulfur Pre-Doped Bismuth Electrocatalysts for Stable and Efficient CO2 Reduction to Formate

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 Materials2026DOI: 10.1007/s40843-025-3978-0

Electrostatic regulation of high-dipole dithienophthalimide-based wide-bandgap polymer for efficient ternary all-polymer solar cells

All-polymer solar cells (all-PSCs) are promising for flexible and wearable electronics due to their excellent stability and mechanical stretchability. However, achieving high performance remains challenging due to difficulties in controlling the morphology of polymer blend films. In this study, a novel polymer donor, PBDTF-DTP, incorporating a weak electron-withdrawing yet large-dipole-moment dithienylphthalimide (DTP-2T) unit, was rationally designed and synthesized for ternary all-PSCs. Introducing PBDTF-DTP as a guest donor enables complementary light absorption and deepens the highest occupied molecular orbital level, simultaneously improving short-circuit current density (J_SC) and open-circuit voltage (V_OC). The large dipole moment of DTP-2T increases the dielectric constant, suppressing non-radiative energy loss and further boosting V_OC. Notably, PBDTF-DTP exhibits a relatively higher molecular electrostatic potential than the host donor, effectively tuning compatibility with both polymer donor and acceptor, regulating blend morphology, and promoting formation of a nanoscale fibrillar network. This optimized morphology facilitates efficient charge generation and transport while suppressing charge recombination. Consequently, ternary all-PSCs based on PM6:PBDTF-DTP:PYIT achieve a synergistic enhancement in J_SC, V_OC, and fill factor, yielding a remarkable power conversion efficiency of 18.01%, significantly higher than that of binary PM6:PYIT devices (15.51%). This study demonstrates that combining electrostatic potential optimization with a ternary strategy provides an effective approach to regulate morphology and achieve high-efficiency all-PSCs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4080-y

Visualizing hepatic M1 macrophages with a dual-target-recognizing photoacoustic nanoprobe for identifying non-alcoholic steatohepatitis

M1 macrophages (M1φ) are pivotal drivers in the progression from non-alcoholic fatty liver (NAFL) to non-alcoholic steatohepatitis (NASH). Longitudinal monitoring of intrahepatic M1φ could facilitate non-invasive diagnosis of NASH, yet achieving specific and sensitive in vivo imaging of M1φ remains challenging due to the nonspecific phagocytic activity common to all phenotypic macrophages. In this study, we developed a dual-target-recognizing photoacoustic nanoprobe that can target glucose transporters (GLUTs) and be selectively activated by nitric oxide (NO). Benefiting from its enhanced affinity for M1φ and decent responsive capability to NO, the probe exhibited favorable imaging performance toward M1φ in ex vivo experiments. Following systemic administration in diabetic mice, the probe rapidly accumulated in the liver, where it was selectively internalized by M1φ via specific recognition between glucose molecules and GLUTs, further inducing a NO-triggered enhancement of the photoacoustic signal. Distinct photoacoustic signal enhancement patterns were observed between NAFL and NASH livers, enabling non-invasive in vivo discrimination of NASH. This study proposes a novel strategy using a dual-target-recognizing probe to improve the selectivity and sensitivity of in vivo M1φ imaging, while also providing new insights for the non-invasive diagnosis of NASH.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(26)60721-9

A Review of Methane Photocatalytic Systems

Methane (CH4), the primary component of natural gas, is an ideal feedstock for producing high-value chemicals and clean fuels due to its high hydrogen-to-carbon ratio. However, its chemical inertness poses significant challenges, and traditional thermal catalytic reforming processes suffer from long reaction pathways and high energy consumption. Photocatalytic technology enables highly selective CH4 conversion under mild conditions, even at room temperature, offering environmental and economic benefits. This review systematically summarizes recent advances in room-temperature photocatalytic systems for direct CH4 conversion. It begins by elucidating the mechanisms, product distributions, and inherent challenges of four key reaction pathways: partial oxidation, non-oxidative coupling, oxidative coupling, and oxidative carbonylation. The discussion then addresses the critical role of catalyst architecture, focusing on semiconductor supports, metal site modulation, and advanced porous frameworks. Furthermore, reactor design and process intensification strategies are examined, including batch and continuous-flow reactors, novel structured reactors, and photo-electro and photo-thermo synergistic approaches. Finally, reaction mechanisms are summarized. Despite progress, challenges remain in fundamental understanding, performance evaluation, and technological integration. Future efforts should focus on mechanistic studies, standardization of evaluation protocols, development of non-noble metal catalysts, system optimization, and comprehensive sustainability assessments.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4274-x

Balancing photosensitivity and visible-light absorption in intrinsically black photosensitive polyimide: synthesis and metal patterning

The escalating power density of electronic devices necessitates effective visible-light shielding in advanced packaging to ensure circuit security and long-term reliability. Photosensitive polyimides (PSPI) serve dual roles as photodefinable dielectrics and structural layers, but intrinsically black PSPI (B-PSPI) suffer from competitive ultraviolet (UV) absorption between chromophores and photosensitive moieties, limiting co-optimization of deep visible-light blocking and lithographic resolution. Here, we report a main-/side-chain spatial decoupling strategy to synthesize a novel B-PSPI. By polymerizing pyromellitic dianhydride with a main-chain coloring monomer (4,4'-diaminodiphenylamine) and a side-chain photosensitive monomer (1,4-dihydropyridine-functionalized diamine), the monomer stoichiometric ratio is precisely engineered. This design spatially isolates functional groups and enhances charge transfer, yielding exceptional visible-light shielding (CIE L* index of 21.39, cut-off wavelength ≈ 555 nm) with good lithographic sensitivity. UV exposure triggers in situ generation of coordination sites from photosensitive groups, anchoring active metal species for electroless copper plating. This enables direct additive fabrication of fine copper lines (40/80 μm line width/spacing) with robust Cu/B-PSPI interfacial adhesion of 16.6 MPa. This work provides a robust molecular design paradigm for B-PSPI, integrating superior optical shielding and surface metallization for high-density interconnect applications.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3480-1

Highly dispersed Cu/WO3 heterojunctions featuring a promoted hydrogen radical-mediated pathway for efficient nitrate reduction to ammonia

Electrochemical nitrate reduction to ammonia (NRA) offers a sustainable route for wastewater denitrification and decentralized ammonia synthesis, but its practical deployment is constrained by sluggish reaction kinetics and the competing hydrogen evolution reaction (HER). Monometallic Cu electrocatalysts, despite favorable nitrate adsorption and tunable electronic structure, exhibit weak H* adsorption, limiting the hydrogen radical-mediated pathway that suppresses HER at low overpotentials. Here, highly dispersed Cu/WO3 heterojunctions supported on carbon fiber were synthesized via carbothermal shock reduction, which reaches ultra-high temperatures within seconds and prevents active-site accumulation. The optimal Cu/WO3 heterojunction achieves an ammonia yield rate of 158.66 μmol h−1 cm−2 and a Faradaic efficiency of 98.27%. Electron paramagnetic resonance and density functional theory calculations reveal a synergistic mechanism: Cu sites preferentially adsorb NO3−, while adjacent WO3 sites accelerate water dissociation to generate hydrogen radicals (H*), which drive the continuous hydrogenation of nitrate to ammonia. This spatial separation of functions promotes the H*-mediated pathway and suppresses HER. The work establishes a heterojunction design strategy for non-precious-metal NRA electrocatalysts, enabling high-rate, high-selectivity ammonia production under mild conditions.