二氧化碳电化学还原
铜
一氧化碳
电化学
催化作用
材料科学
二氧化碳
化学工程
多孔性
选择性
无机化学
电极
碳纤维
化学
复合材料
有机化学
冶金
物理化学
复合数
工程类
作者
Siqi Zhao,Oliver Christensen,Zhaozong Sun,Hong‐Qing Liang,Alexander Bagger,Kristian Torbensen,Pegah Nazari,Jeppe V. Lauritsen,Steen Uttrup Pedersen,Jan Rossmeisl,Kim Daasbjerg
标识
DOI:10.1038/s41467-023-36530-z
摘要
Copper offers unique capability as catalyst for multicarbon compounds production in the electrochemical carbon dioxide reduction reaction. In lieu of conventional catalysis alloying with other elements, copper can be modified with organic molecules to regulate product distribution. Here, we systematically study to which extent the carbon dioxide reduction is affected by film thickness and porosity. On a polycrystalline copper electrode, immobilization of porous bipyridine-based films of varying thicknesses is shown to result in almost an order of magnitude enhancement of the intrinsic current density pertaining to ethylene formation while multicarbon products selectivity increases from 9.7 to 61.9%. In contrast, the total current density remains mostly unaffected by the modification once it is normalized with respect to the electrochemical active surface area. Supported by a microkinetic model, we propose that porous and thick films increase both local carbon monoxide partial pressure and the carbon monoxide surface coverage by retaining in situ generated carbon monoxide. This reroutes the reaction pathway toward multicarbon products by enhancing carbon-carbon coupling. Our study highlights the significance of customizing the molecular film structure to improve the selectivity of copper catalysts for carbon dioxide reduction reaction.
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