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October 11, 2017Angewandte Chemie International Edition138 citations

O2 Activation on Ceria Catalysts—The Importance of Substrate Crystallographic Orientation

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CYChengwu YangXYXiaojuan YuSHStefan Heißler

Key Points

  • Determine how crystallographic orientation influences oxygen activation and vacancy distribution across low-index ceria single-crystal surfaces.
  • Performed spectroscopic characterization of reactive dioxygen species on reduced ceria (110), (100), and (111) single-crystal surfaces.
  • Used density functional theory to simulate oxygen vacancy behavior and subsurface diffusion mechanisms across different surface structures.
  • Direct spectroscopic characterization identified reactive superoxo and peroxo dioxygen species at defect sites on reduced ceria (110) and (100) surfaces.
  • Neither superoxo nor peroxo species formed on the thermodynamically stable ceria (111) surface due to the subsurface diffusion of oxygen vacancies.

Abstract

An atomic-level understanding of dioxygen activation on metal oxides remains one of the major challenges in heterogeneous catalysis. By performing a thorough surface-science study of all three low-index single-crystal surfaces of ceria, probably the most important redox catalysts, we provide a direct spectroscopic characterization of reactive dioxygen species at defect sites on the reduced ceria (110) and (100) surfaces. Surprisingly, neither of these superoxo and peroxo species was found on ceria (111), the thermodynamically most stable surface of this oxide. Applying density functional theory, we could relate these apparently inconsistent findings to a sub-surface diffusion of O vacancies on (111) substrates, but not on the less-closely packed surfaces. These observations resolve a long standing debate concerning the location of O vacancies on ceria surfaces and the activation of O2 on ceria powders.

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Cite This Study

Yang et al. (2017) studied this question.

synapsesocial.com/papers/69d99cd60d540cafc583667chttps://doi.org/10.1002/anie.201709199
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