催化学报 ›› 2026, Vol. 89: 292-309.DOI: 10.1016/S1872-2067(26)65115-7

• 论文 • 上一篇    下一篇

α-Ag2WO4 (110)表面硫化物氧化机理的DFT研究: 活性氧风暴驱动的催化过程

Felipe Lipskya,*(), Miguel A. San-Miguelb, Vicent S. Safonta, Mo´nica Olivaa, Juan Andr´esa,*()   

  1. a雅梅一世大学物理与分析化学系,卡斯特洛,西班牙
    b坎皮纳斯州立大学化学研究所, 巴西
  • 收稿日期:2026-01-15 接受日期:2026-03-03 出版日期:2026-10-18 发布日期:2026-09-01
  • 通讯作者: *电子信箱: lipsky@uji.es (F. Lipsky),
    andres@qfa.uji.es (J. Andr´es).

Comprehensive understanding of sulfide oxidation on α-Ag2WO4 (110) surface: A DFT study on ROS storm-driven catalytic mechanism

Felipe Lipskya,*(), Miguel A. San-Miguelb, Vicent S. Safonta, Mo´nica Olivaa, Juan Andr´esa,*()   

  1. aDepartment of Physical and Analytical Chemistry, Universitat Jaume I, Castello´, Spain
    bChemistry Institute, Universidade Estadual de Campinas, Brazil
  • Received:2026-01-15 Accepted:2026-03-03 Online:2026-10-18 Published:2026-09-01
  • Contact: E-mail: lipsky@uji.es (F. Lipsky),andres@qfa.uji.es (J. Andr´es).

摘要:

明晰金属氧化物表面活性氧(ROS)的生成与调控机制是催化氧化领域的核心基础问题; 然而, 在分子水平上, 活性位点的确切本质及反应机制仍不清楚. 本文使用密度泛函理论(DFT)计算, 确定了O2, H2O和H2O2α-Ag2WO4(110)表面上产生ROS (1O2, ·O2-, ·OH和·OOH)的完整活化途径的新反应机制. 结果表明, 配位不饱和表面Ag+作为本征活性位点, 大幅提升反应物分子吸附结合能、降低基元反应活化能垒. 随后, 以二甲基硫氧化为亚砜和砜为基准反应, 表征了深层分子机制的自由能分布, 推进了α-Ag2WO4(110)表面化学的基本概念. 值得注意的是, 该表面对H2O2活化表现出卓越的催化性能, 通过低活化能垒实现了反应性中间体1O2和·OOH的形成. 这些连续的阶段决定了最有利的途径, 材料带隙中间电子态可分步调控表面电子结构, 分别稳定闭壳层成对中间体、开壳层自由基单电子中间体. 总的来说, 本工作从分子层面阐明多功能活性晶面调控ROS生成与转化的微观规律, 为金属氧化物催化氧化体系的设计提供理论依据.

关键词: 活性氧物种生成, 硫化物氧化, 表面催化, 密度泛函理论研究, α-型钨酸银

Abstract:

Understanding how metal oxide surfaces generate and manage reactive oxygen species (ROS) is fundamental to catalytic oxidation; however, the precise nature of active sites and reaction mechanisms remains poorly understood at the molecular level. Herein, using density functional theory calculations, we identify a novel reaction mechanism for the complete activation pathways of O2, H2O, and H2O2 to generate ROS—1O2, ·O2-, ·OH, and ·OOH—on the α-Ag2WO4 (110) surface. We demonstrate that undercoordinated surface silver cations act as active sites, significantly enhancing adsorption energetics and reducing activation energy barriers. Subsequently, dimethyl sulfide oxidation to sulfoxide and sulfone serves as a benchmark reaction to characterize the free energy profiles of the underlying molecular mechanism, advancing fundamental concepts in the chemistry of the α-Ag2WO4 (110) surface. Notably, this surface exhibits exceptional catalytic performance for H2O2 activation, achieving the formation of reactive intermediates 1O2 and ·OOH via low activation energy barriers. These consecutive stages define the most favorable pathways, where mid-gap states induce the necessary structural and electronic characteristics to stabilize paired- and unpaired-electron intermediates in the first and second steps, respectively. Collectively, these insights provide a theoretical foundation for the adsorption and activation processes governing the ROS regulation mechanism at highly reactive multifunctional surface sites, representing a significant advancement in the field of catalysis.

Key words: ROS generation, Sulfide oxidation, Surface catalysis, DFT study, α-Ag2WO4