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Journal of Synthetic Crystals ›› 2025, Vol. 54 ›› Issue (8): 1441-1453.DOI: 10.16553/j.cnki.issn1000-985x.2025.0035

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First-Principles Study on Oxidation of Methane to Methanol Catalyzed by Non-Stoichiometric Tungsten Oxide (WO3-x

QIN Jilong1(), LI Xiangyuan2, ZHANG Lulu1,3, LIU Jianxin1, LI Rui1,2()   

  1. 1.College of Environmental and Ecology,Taiyuan University of Technology,Taiyuan 030024,China
    2.Tianji Coal Chemical Industry Group Co. ,Ltd. ,Changzhi 047500,China
    3.Department of Materials and Chemical Engineering,Taiyuan University,Taiyuan 030032,China
  • Received:2025-02-24 Online:2025-08-20 Published:2025-09-01

Abstract: The key challenge in the oxidation of methane to methanol is attributed to the efficient activation of CH4 by catalysts. Non-stoichiometric WO3-x (0<x<3), recognized for its controllable oxygen vacancies along with structural stability and conductive advantages, has emerged as a research hotspot in novel catalytic materials. In this study, density functional theory (DFT) methods were employed to systematically investigate the catalytic performance of six distinct WO3-x materials for oxidation of methane to methanol. The mechanisms were elucidated through comprehensive analyses of material structures, surface active sites, methane oxidation behaviors and electronic properties. The results reveal that the WO-terminated surface of the WO2.72 catalyst demonstrates enhanced methane adsorption and activation capabilities, which are ascribed to its lower work function, hybridization between W 5d orbitals and CH4 molecules, and the strong electron-donating capacity of W atomic states. Specifically, this surface exhibits a favorable CH4 adsorption free energy (-0.62 eV) and dissociation free energy (-0.07 eV). These findings provide theoretical guidance for exploring the application of WO3-x catalysts in methane oxidation reactions.

Key words: methane; photocatalysis; WO3-x; first-principle; density functional theory

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