Efficient and stable acidic CO 2 electrolysis to formic acid by a reservoir structure design

Author:

Chi Li-Ping1ORCID,Niu Zhuang-Zhuang1ORCID,Zhang Yu-Cai1ORCID,Zhang Xiao-Long1ORCID,Liao Jie1ORCID,Wu Zhi-Zheng1ORCID,Yu Peng-Cheng1ORCID,Fan Ming-Hui1ORCID,Tang Kai-Bin1ORCID,Gao Min-Rui1ORCID

Affiliation:

1. Division of Nanomaterials and Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, Department of Chemistry, University of Science and Technology of China, Hefei 230026, China

Abstract

Electrochemical synthesis of valuable chemicals and feedstocks through carbon dioxide (CO 2 ) reduction in acidic electrolytes can surmount the considerable CO 2 loss in alkaline and neutral conditions. However, achieving high productivity, while operating steadily in acidic electrolytes, remains a big challenge owing to the severe competing hydrogen evolution reaction. Here, we show that vertically grown bismuth nanosheets on a gas-diffusion layer can create numerous cavities as electrolyte reservoirs, which confine in situ–generated hydroxide and potassium ions and limit inward proton diffusion, producing locally alkaline environments. Based on this design, we achieve formic acid Faradaic efficiency of 96.3% and partial current density of 471 mA cm −2 at pH 2. When operated in a slim continuous-flow electrolyzer, the system exhibits a full-cell formic acid energy efficiency of 40% and a single pass carbon efficiency of 79% and performs steadily over 50 h. We further demonstrate the production of pure formic acid aqueous solution with a concentration of 4.2 weight %.

Funder

安徽省科学技术厅 | Anhui Provincial Key Research and Development Plan

MOST | National Natural Science Foundation of China

University of Science and Technology of China

MOE | Fundamental Research Funds for the Central Universities

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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