甲酸
电解质
电解
法拉第效率
气体扩散电极
无机化学
水溶液
电化学
化学
二氧化碳
扩散
氢氧化钾
二氧化碳电化学还原
氢
电解水
化学工程
电极
一氧化碳
催化作用
有机化学
物理化学
工程类
物理
热力学
作者
Li‐Ping Chi,Zhuang‐Zhuang Niu,Yu-Cai Zhang,Xiaolong Zhang,Jie Liao,Zhi‐Zheng Wu,Peng-Cheng Yu,Minghui Fan,Kaibin Tang,Min‐Rui Gao
标识
DOI:10.1073/pnas.2312876120
摘要
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 %.
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