DOE OSTI · 2301665
Directing CO 2 electroreduction pathways for selective C 2 product formation using single-site doped copper catalysts
Abstract
Manipulating the selectivity-determining step in post-C–C coupling is crucial for enhancing C 2 product specificity during electrocatalytic CO 2 reduction, complementing efforts to boost rate-determining step kinetics. Here we highlight the role of single-site noble metal dopants on Cu surfaces in influencing C–O bond dissociation in an oxygen-bound selectivity-determining intermediate, steering post-C–C coupling toward ethylene versus ethanol. Integrating theoretical and experimental analyses, we demonstrate that the oxygen binding strength of the Cu surface controls the favorability of C–O bond scission, thus tuning the selectivity ratio of ethylene-to-ethanol. The Rh-doped Cu catalyst with optimal oxygen binding energy achieves a Faradaic efficiency toward ethylene of 61.2% and an ethylene-to-ethanol Faradaic efficiency ratio of 4.51 at –0.66 V versus RHE (reversible hydrogen electrode). Integrating control of both rate-determining and selectivity-determining steps further raises ethylene Faradaic efficiency to 68.8% at 1.47 A cm -2 in a tandem electrode. Our insights guide the rational design of Cu-based catalysts for selective CO 2 electroreduction to a single C 2 product.
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Li, Zhengyuan, Wang, Peng, Lyu, Xiang, Kondapalli, Vamsi Reddy, Xiang, Shuting, Jimenez, Juan D., Ma, Lu, Ito, Takeshi, Zhang, Tianyu, Raj, Jithu, Fang, Yanbo, Bai, Yaocai, Li, Jianlin, Serov, Alexey, Shanov, Vesselin, Frenkel, Anatoly I., Senanayake, Sanjaya D., Yang, Shize, Senftle, Thomas P., Wu, Jingjie. 2024-02-08. Directing CO 2 electroreduction pathways for selective C 2 product formation using single-site doped copper catalysts. https://doi.org/10.1038/s44286-023-00018-w
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