Steering the Reconstruction of Oxide-Derived Cu by Secondary Metal for Electrosynthesis of n‑Propanol from CO

As fuel and an important chemical feedstock, n-propanol is highly desired in electrochemical CO2/CO reduction on Cu catalysts. However, the precise regulation of the Cu localized structure is still challenging and poorly understood, thus hindering the selective n-propanol electrosynthesis. Herein, b...

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Veröffentlicht in:Journal of the American Chemical Society 2024-02, Vol.146 (7), p.4632-4641
Hauptverfasser: Long, Chang, Wan, Kaiwei, Chen, Yu, Li, Lei, Jiang, Yuheng, Yang, Caoyu, Wu, Qianbao, Wu, Guoling, Xu, Peng, Li, Jiong, Shi, Xinghua, Tang, Zhiyong, Cui, Chunhua
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Sprache:eng
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Zusammenfassung:As fuel and an important chemical feedstock, n-propanol is highly desired in electrochemical CO2/CO reduction on Cu catalysts. However, the precise regulation of the Cu localized structure is still challenging and poorly understood, thus hindering the selective n-propanol electrosynthesis. Herein, by decorating Au nanoparticles (NPs) on CuO nanosheets (NSs), we present a counterintuitive transformation of CuO into undercoordinated Cu sites locally around Au NPs during CO reduction. In situ spectroscopic techniques reveal the Au-steered formation of abundant undercoordinated Cu sites during the removal of oxygen on CuO. First-principles accuracy molecular dynamic simulation demonstrates that the localized Cu atoms around Au tend to rearrange into disordered layer rather than a Cu (111) close-packed plane observed on bare CuO NSs. These Au-steered undercoordinated Cu sites facilitate CO binding, enabling selective electroreduction of CO into n-propanol with a high Faradaic efficiency of 48% in a flow cell. This work provides new insight into the regulation of the oxide-derived catalysts reconstruction with a secondary metal component.
ISSN:0002-7863
1520-5126
DOI:10.1021/jacs.3c11359