Abstract
To identify the intrinsic active sites in oxides or oxide supported
catalysts is a research frontier in the fields of heterogeneous
catalysis and material science. In particular, the role of oxygen
vacancies on the redox properties of oxide catalysts is still not fully
understood. Herein, some relevant research dealing with M1–O–M2 or M1–□–M2
linkages as active sites in mixed oxides, in oxide supported
single‐atom catalysts, and at metal/oxide interfaces of oxide supported
nanometal catalysts for various reaction systems is reviewed. It is
found that the catalytic activity of these oxides not only depends on
the amounts of oxygen vacancies and metastable cations but also shows a
significant influence from the local environment of the active sites, in
particular, the symmetry of the oxygen vacancies. Based on the recent
progress in the relevant fields, an “asymmetric oxygen vacancy site” is
introduced, which indicates an oxygen vacancy with an asymmetric
coordination of cations, making oxygen “easy come, easy go,” i.e., more
reactive in redox reactions. The establishment of this new mechanism
would shed light on the future investigation of the intrinsic active
sites in oxide and oxide supported catalysts.
| Original language | English |
|---|---|
| Article number | 1901970 |
| Number of pages | 8 |
| Journal | Advanced Science |
| Volume | Early View |
| Early online date | 5 Dec 2019 |
| DOIs | |
| Publication status | E-pub ahead of print - 5 Dec 2019 |
Keywords
- Asymmetric oxygen vacancies
- Redox active sites
- Mixed oxides
- Single-atom catalysts
- Interfacial catalysts
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