A bimetallic CuBi catalyst for enhanced electrochemical CO reduction to acetate

Catalyst design principles for generating multicarbon (C 2+ ) products from electrochemical carbon dioxide (CO 2 ) reduction (CO 2 R) and carbon monoxide (CO) reduction (COR) are often similar and used interchangeably. However, here we demonstrate how a copper bismuth (CuBi) catalyst generates a drastically different product output for CO 2 R versus COR, offering a valuable case study. During CO 2 R, we observe predominant formate production, due to selective adsorption of the CO 2 reactant onto Bi sites rather than Cu sites. On the other hand, acetate is observed as the primary product for COR because formate production on Bi sites is shut down. Specifically, with the optimal CuBi catalyst, we achieve a high acetate Faradaic efficiency of 68.2% at 100 milliamperes per square centimeter under COR conditions. Experiments involving the coreduction of 13 CO 2 / 12 CO feeds of varying mixing ratios show that acetate has the highest carbon-12 content among the products. This suggests that CO-selective sites (Cu CO ) could play a role in facilitating selective acetate production. Notably, analysis of the acetate isotopologues also reveals a preference for the formation of 12 CH 3 13 COO − over 13 CH 3 12 COO − . We propose this to be due to an acetate-selective pathway involving asymmetric hydrogenation of * 12 CO 13 CO to * 12 CH 2 13 CO (ketene). This pathway is promoted at high pH and is postulated to occur at the interfaces between Cu CO and CO 2 -selective sites (Cu CO2 ). Together, our results provide mechanistic insights into acetate formation under COR conditions.

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Publication Details

Journal
Science Advances
Published
2026-09-09
DOI
https://doi.org/10.1126/sciadv.aef9216
Primary Topic
CO2 Reduction Techniques and Catalysts
Type
article
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article

A bimetallic CuBi catalyst for enhanced electrochemical CO reduction to acetate

Chengyi Zhang, Yingxia Zhao, Yanwei Lum, Sung‐Fu Hung et al.
Science Advances
CO2 Reduction Techniques and Catalysts
article

A bimetallic CuBi catalyst for enhanced electrochemical CO reduction to acetate

Chengyi Zhang, Yingxia Zhao, Yanwei Lum, Sung‐Fu Hung, Shuo Chen, Sibo Wang, Ziyun Wang, Wu Bo, Ziyu Mi, Ruoou Yang, Meng Wang, Jiguang Zhang
article en

Abstract

Catalyst design principles for generating multicarbon (C 2+ ) products from electrochemical carbon dioxide (CO 2 ) reduction (CO 2 R) and carbon monoxide (CO) reduction (COR) are often similar and used interchangeably. However, here we demonstrate how a copper bismuth (CuBi) catalyst generates a drastically different product output for CO 2 R versus COR, offering a valuable case study. During CO 2 R, we observe predominant formate production, due to selective adsorption of the CO 2 reactant onto Bi sites rather than Cu sites. On the other hand, acetate is observed as the primary product for COR because formate production on Bi sites is shut down. Specifically, with the optimal CuBi catalyst, we achieve a high acetate Faradaic efficiency of 68.2% at 100 milliamperes per square centimeter under COR conditions. Experiments involving the coreduction of 13 CO 2 / 12 CO feeds of varying mixing ratios show that acetate has the highest carbon-12 content among the products. This suggests that CO-selective sites (Cu CO ) could play a role in facilitating selective acetate production. Notably, analysis of the acetate isotopologues also reveals a preference for the formation of 12 CH 3 13 COO − over 13 CH 3 12 COO − . We propose this to be due to an acetate-selective pathway involving asymmetric hydrogenation of * 12 CO 13 CO to * 12 CH 2 13 CO (ketene). This pathway is promoted at high pH and is postulated to occur at the interfaces between Cu CO and CO 2 -selective sites (Cu CO2 ). Together, our results provide mechanistic insights into acetate formation under COR conditions.

Science AdvancesVol. 12(37)
Agency for Science, Technology and Research (SG), Guangdong University of Technology (CN), National Yang Ming Chiao Tung University (TW), University of Auckland (NZ), National University of Singapore (SG), Singapore Institute for Clinical Sciences (SG)
Openalex Percentile: Top 28%
CO2 Reduction Techniques and Catalysts
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