An ultrastable heterostructured oxide catalyst based on high-entropy materials: A new strategy toward catalyst stabilization via synergistic interfacial interaction
Designing high-performance catalysts that can stabilize catalytic active sites against sintering to deactivation at temperature higher than 900 °C is significant but challenging. Here we report a new strategy to obtain a transition metal oxide catalyst with high temperature stability for CO oxidation. This is achieved through a synergistic interfacial interaction at the interface of a heterostructure between high–entropy oxides (HEO, high temperature stability) and CuCeO
Duke Scholars
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Related Subject Headings
- Physical Chemistry
- 4011 Environmental engineering
- 4004 Chemical engineering
- 3406 Physical chemistry
- 0907 Environmental Engineering
- 0904 Chemical Engineering
- 0306 Physical Chemistry (incl. Structural)
Citation
Published In
DOI
ISSN
Publication Date
Volume
Related Subject Headings
- Physical Chemistry
- 4011 Environmental engineering
- 4004 Chemical engineering
- 3406 Physical chemistry
- 0907 Environmental Engineering
- 0904 Chemical Engineering
- 0306 Physical Chemistry (incl. Structural)