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WX
Verified CAS / Academic Author5 Decoded Studies

Prof. WU Xiangyang

China University of Mining and Technology

Co-Affiliations:Hubei University, Wuhan University, China Metallurgical Geology BureauHebei University of Technology, School of Civil and Transportation Engineering; Chinese Research Academy of Environmental Sciences, Institute of Water Ecology and Environment

Research Publications & English Decoded Briefs

Showing 5 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4192-y

Synergistic Multi-Metal and Defect Engineering for High-Efficiency Hydrogen Evolution Reaction

Electrochemical water splitting is pivotal for scalable green hydrogen production, yet its practical deployment hinges on cost-effective electrocatalysts with high activity and durability. This study introduces a low-cost, three-dimensional (3D) nanoporous ZrVFeCoNi material fabricated via chemical dealloying, at merely 0.16% of the cost of Pt. The structure-activity relationship between its microstructure and hydrogen evolution reaction (HER) performance was systematically explored. Lattice defect effects from multiphase intermetallic compounds, combined with multi-metal synergy, optimize H+ adsorption energy and electron transfer kinetics. The 3D nanoporous architecture provides a high electrochemical surface area with abundant active sites, enhancing electrolyte penetration and reducing interfacial mass transfer resistance. Consequently, the ZrVFeCoNi electrode exhibits outstanding HER performance, requiring only a 38 mV overpotential to reach 10 mA cm−2 and maintaining stable operation for 1000 h at 500 mA cm−2. Integrated into a full water electrolyzer (ZrVFeCoNi || IrO2/Ni), the system achieves a cell voltage of 1.60 V at a current density of 400 mA cm−2. Advanced characterization and density functional theory (DFT) calculations reveal that interfacial interactions and charge transfer at heterointerfaces drive catalytic activity, showcasing the potential of 3D nano-structured multiphase intermetallic compounds as high-performance electrocatalysts for green hydrogen systems.

The Chinese Journal of Process Engineering2026DOI: 10.12034/j.issn.1009-606X.225204

Activation of Peroxymonosulfate-Based Advanced Oxidation via Co@Si-A for Tetracycline Degradation: Performance and Mechanism

Cobalt-doped silica aerogel (Co@Si-A) catalysts were synthesized via a one-step sol-gel method and applied for peroxymonosulfate (PMS) activation to degrade tetracycline (TC). The catalyst with 25 wt% cobalt doping (25Co@Si-A) exhibited superior catalytic performance, achieving 98.97% TC degradation within 30 min under specified conditions (TC 10 mg/L, 100 mL). Brunauer-Emmett-Teller (BET) analysis revealed a high specific surface area and well-developed porous architecture with nano-confined spaces. The 25Co@Si-A/PMS system demonstrated outstanding adaptability across a broad pH range (5–9), maintaining >95% degradation efficiency, and showed strong resistance to sulfate and nitrate ions. In real water matrices, degradation efficiency remained around 80%. After five consecutive cycles, the system retained 82.33% degradation efficiency, with cobalt ion leaching of only 23.7 μg/L in the first cycle, indicating excellent stability. Mechanistic studies using electron paramagnetic resonance (EPR), radical quenching, and probe compound tests confirmed a synergistic radical and non-radical pathway. The primary reactive species were sulfate radicals (SO4•−), hydroxyl radicals (•OH), and singlet oxygen (1O2), with contributions of 58.53%, 9.79%, and 31.68%, respectively. Electrochemical tests indicated that 25Co@Si-A exhibited superior charge transfer compared to Co3O4, attributed to the nano-confined effect of the silica aerogel, which enhanced Co(II)/Co(III) redox cycling and PMS activation. This research provides a promising strategy for utilizing silica aerogel-based catalysts in advanced oxidation processes for water treatment.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202508092

Identification and Evolution Analysis of Research Hotspots on Per- and Polyfluoroalkyl Substances in Soil

Per- and polyfluoroalkyl substances (PFAS) are persistent organic pollutants with high environmental stability and bioaccumulation potential, posing risks to soil ecosystems and human health. To systematically map research hotspots and evolutionary trends, a bibliometric analysis was conducted on 1,459 publications from the Web of Science Core Collection and CNKI (1985–2025) using VOSviewer and Python. Keyword clustering identified four primary research themes: (1) transport and transformation of PFAS in soil, (2) bioaccumulation and toxic effects, (3) environmental fate and risk assessment of novel PFAS, and (4) remediation strategies for legacy PFAS. Temporal trend analysis using a trend factor (T) revealed a shift from early toxicological studies to policy-driven growth post-2006, with recent emphasis on remediation technologies, migration mechanisms, and bioconcentration. Future research priorities include understanding the fate of novel substitutes in complex media, developing green and sustainable remediation technologies, and establishing robust validation frameworks. The study provides a comprehensive knowledge map to guide scientific prevention and efficient governance of PFAS contamination.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202510034

Chloride-Enhanced Fe(II)/PMS/H2O2 System for Degradation of PBTC and Simultaneous Recovery of Iron Phosphate

Phosphonate wastewater, characterized by stable C–P bonds, poses significant environmental risks due to its resistance to degradation and potential to contribute to eutrophication. This study developed a chloride-enhanced Fe(II)/PMS/H2O2 system for the oxidative degradation of 2-phosphonobutane-1,2,4-tricarboxylic acid (PBTC) and simultaneous recovery of phosphorus as iron phosphate (FePO4). Under optimal conditions (0.1 mmol/L PBTC, 1.0 mmol/L Fe(II), 0.5 mmol/L PMS, 0.5 mmol/L H2O2, 10 mmol/L NaCl, initial pH 3.0, 60 min), total phosphorus (TP) removal reached 100%, with phosphorus nearly completely recovered as FePO4 precipitate. Increasing NaCl concentration and temperature enhanced TP removal, while pH significantly influenced removal efficiency and product speciation; acidic conditions (pH < 4.3) favored FePO4 precipitation. Coexisting Ca2+ and Mg2+ had negligible effects, whereas HCO3− and humic acid (HA) inhibited TP removal in a concentration-dependent manner. Radical quenching and electron spin resonance (ESR) analyses identified hydroxyl radicals (•OH), ferryl ion (Fe(IV)=O), sulfate radicals (SO4•−), and chlorine radicals (Cl•) as primary reactive species, with •OH playing a dominant role. Chloride introduction promoted the generation of multiple reactive species, and Cl• and its derivative Cl2•− directly attacked the C–P bond and phosphonate group, facilitating phosphorus release as PO43− and subsequent FePO4 formation. The system's feasibility was validated using actual industrial circulating cooling water. This study provides a novel approach for phosphonate wastewater treatment and phosphorus recovery.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3951-4

Toward efficient and stable lithium storage: molten salt electrolysis-constructed amorphous Si-dominant anodes with synergistic interfaces

Silicon anodes offer an ultrahigh theoretical capacity (4200 mAh g−1) but suffer from >300% volumetric expansion during cycling and unstable solid electrolyte interphase (SEI) formation, leading to rapid capacity fading. Here, we design a hierarchical composite p-cSi@aSi@MgSiN2@C featuring a porous crystalline-amorphous silicon core (p-cSi@aSi), an in-situ MgSiN2 transition layer, and an outer nitrogen-doped carbon shell. The 3D interconnected pores accommodate volume expansion, while amorphous silicon enables isotropic lithiation-induced strain, eliminating crystalline phase transition barriers. The MgSiN2 layer transforms into a tough Li3N-rich SEI with ultra-fast ion channels, and the carbon shell provides mechanical confinement and electronic conductivity. This synergistic interface engineering achieves an initial coulombic efficiency (ICE) of 81.4%, a charge transfer resistance of 16.4 Ω after 200 cycles (64% reduction), and a Li+ diffusion coefficient of 1.72×10−11 cm2 s−1. The anode delivers 1719.3 mAh g−1 at 0.2 C after 200 cycles and 823.8 mAh g−1 at 0.5 C after 500 cycles. The molten salt electrolysis synthesis achieves a current efficiency of 68.12% and specific energy consumption of 12.76 kWh kg−1, with an estimated electricity cost of 1154.69 USD ton−1, only 20% of commercial Si/C anodes. This work resolves the ICE-cycle life trade-off and provides a scalable, cost-effective approach for next-generation high-energy batteries.