催化作用
格式化
甲醇
化学
反应性(心理学)
氧气
活动站点
氧化物
尼亚尔
氢溢流
空位缺陷
反应中间体
吸附
无机化学
密度泛函理论
金属
工作(物理)
化学工程
催化循环
材料科学
蒸汽重整
反应速率
活性氧
光化学
多相催化
反应机理
协同催化
氧化铈
化学物理
氧化钼
作者
S. Todaro,F. Arena,C. Cannilla,C. Corrente,A. Cajumi,M. Samperi,M. Santoro,F. Frusteri,G. Bonura
标识
DOI:10.1016/j.apcatb.2026.126614
摘要
In this research work CuO-ZnO-ZrO₂ and In₂O₃-ZnO-ZrO₂ are used as benchmark systems to unravel the nature of active sites during CO₂ hydrogenation to methanol, as driven by metal-oxide interfaces and oxygen vacancies respectively. A combination of structural and surface techniques is applied to systematically correlate methanol formation rates with either interfacial site density or oxygen vacancy concentration. On the Cu-based catalyst the methanol rate appears as a direct function of the Cu–oxide interfacial area, with H₂ activation and spillover confirmed as essential steps by temperature programmed measurements. On the other hand, the methanol productivity on the In-based catalyst directly scales with vacancy density, with formate intermediates identified as bound exclusively to oxide sites by operando DRIFTS. These results establish clear structure–activity relationships for interface-driven and oxide-driven pathways, providing a framework for the rational design of next-generation CO₂-to-methanol catalysts. • CuZnZr and InZnZr are compared for CO2 hydrogenation toMeOH at 3.0 MPa, 473–573 K. • XRD/XPS/TEM show no clear metallic In after H2 reduction at 573 K. • CO2/H2-TPD reveal distinct adsorption and reactants activation on Cu vs In sites. • Cu–oxide interfaces boost activity but favor CO; vacancies enhance MeOH selectivity.
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