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Tuning the activities of cuprous oxide nanostructures via the oxide-metal interaction.


ABSTRACT: Despite tremendous importance in catalysis, the design of oxide-metal interface has been hampered by the limited understanding of the nature of interfacial sites and the oxide-metal interaction (OMI). Through construction of well-defined Cu2O/Pt, Cu2O/Ag and Cu2O/Au interfaces, we find that Cu2O nanostructures (NSs) on Pt exhibit much lower thermal stability than on Ag and Au, although they show the same structure. The activities of these interfaces are compared for CO oxidation and follow the order of Cu2O/Pt > Cu2O/Au > Cu2O/Ag. OMI is found to determine the activity and stability of supported Cu2O NSs, which could be described by the formation energy of interfacial oxygen vacancy. Further, electronic interaction between Cu+ and metal substrates is found center to OMI, where the d band center could be used as a key descriptor. Our study provides insight for OMI and for the development of Cu-based catalysts for low temperature oxidation reactions.

SUBMITTER: Huang W 

PROVIDER: S-EPMC7210313 | biostudies-literature | 2020 May

REPOSITORIES: biostudies-literature

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Tuning the activities of cuprous oxide nanostructures via the oxide-metal interaction.

Huang Wugen W   Liu Qingfei Q   Zhou Zhiwen Z   Li Yangsheng Y   Ling Yunjian Y   Wang Yong Y   Tu Yunchuan Y   Wang Beibei B   Zhou Xiaohong X   Deng Dehui D   Yang Bo B   Yang Yong Y   Liu Zhi Z   Bao Xinhe X   Yang Fan F  

Nature communications 20200508 1


Despite tremendous importance in catalysis, the design of oxide-metal interface has been hampered by the limited understanding of the nature of interfacial sites and the oxide-metal interaction (OMI). Through construction of well-defined Cu<sub>2</sub>O/Pt, Cu<sub>2</sub>O/Ag and Cu<sub>2</sub>O/Au interfaces, we find that Cu<sub>2</sub>O nanostructures (NSs) on Pt exhibit much lower thermal stability than on Ag and Au, although they show the same structure. The activities of these interfaces ar  ...[more]

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