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March 2, 2026Applied Catalysis B Environment and Energy3 citationsOpen Access

Metal-oxide interfaces and oxygen vacancies as dominant active sites in CO2 hydrogenation to methanol: Contrasting reactivity of Cu- and In-based functionalities

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STS. TodaroFAF. ArenaCCC. Cannilla

Key Points

  • To investigate the role of metal-oxide interfaces and oxygen vacancies in the reactivity of Cu- and In-based catalysts during CO₂ hydrogenation to methanol.
  • Utilized CuO-ZnO-ZrO₂ and In₂O₃-ZnO-ZrO₂ as benchmark catalysts.
  • Applied structural and surface characterization techniques including XRD, XPS, and TEM.
  • Measured methanol formation rates correlated with interfacial site density and oxygen vacancy concentration.
  • In Cu-based catalysts, methanol production is driven by the interfacial area with Cu–oxide sites.
  • For In-based catalysts, methanol yield directly correlates with oxygen vacancy density.
  • Characterization techniques revealed distinct site behaviors, with Cu enhancing activity while In favors selectivity.

Abstract

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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Cite This Study

Todaro et al. (2026) studied this question.

synapsesocial.com/papers/69a52920f1e85e5c73bf07c6https://doi.org/10.1016/j.apcatb.2026.126614
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