电化学
阴极
碳纤维
熔盐
还原(数学)
金属
材料科学
离子液体
液态金属
无机化学
电极
化学
冶金
有机化学
复合数
催化作用
物理化学
复合材料
数学
几何学
作者
Shuangxi Jing,Sheng Ren,Xinxin Liang,Dong Gu,Yuhao Peng,Juanxiu Xiao,Yijun Shen,Di Hu,Wei Xiao
标识
DOI:10.1002/anie.202216315
摘要
An overall carbon-neutral CO2 electroreduction requires enhanced conversion efficiency and intensified functionality of CO2 -derived products to balance the carbon footprint from CO2 electroreduction against fixed CO2 . A liquid Sn cathode is herein introduced into electrochemical reduction of CO2 in molten salts to fabricate core-shell Sn-C spheres (Sn@C). An in situ generated Li2 SnO3 /C directs a self-template formation of Sn@C. Benefitting from the accelerated reaction kinetics from the liquid Sn cathode and the core-shell structure of Sn@C, a CO2 -fixation current efficiency higher than 84 % and a high reversible lithium-storage capacity of Sn@C are achieved. The versatility of this strategy is demonstrated by other low melting point metals, such as Zn and Bi. This process integrates energy-efficient CO2 conversion and template-free fabrication of value-added metal-carbon, achieving an overall carbon-neutral electrochemical reduction of CO2 .
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