催化作用
选择性
电催化剂
电化学
氮气
材料科学
碳纤维
化学
兴奋剂
无机化学
金属
还原(数学)
有机化学
电极
物理化学
复合材料
复合数
光电子学
数学
几何学
作者
Wen Ju,Alexander Bagger,Guang‐Ping Hao,Ana Sofía Varela,Ilya Sinev,Volodymyr Bon,Beatriz Roldán Cuenya,Stefan Kaskel,Jan Rossmeisl,Peter Strasser
标识
DOI:10.1038/s41467-017-01035-z
摘要
Abstract Direct electrochemical reduction of CO 2 to fuels and chemicals using renewable electricity has attracted significant attention partly due to the fundamental challenges related to reactivity and selectivity, and partly due to its importance for industrial CO 2 -consuming gas diffusion cathodes. Here, we present advances in the understanding of trends in the CO 2 to CO electrocatalysis of metal- and nitrogen-doped porous carbons containing catalytically active M–N x moieties (M = Mn, Fe, Co, Ni, Cu). We investigate their intrinsic catalytic reactivity, CO turnover frequencies, CO faradaic efficiencies and demonstrate that Fe–N–C and especially Ni–N–C catalysts rival Au- and Ag-based catalysts. We model the catalytically active M–N x moieties using density functional theory and correlate the theoretical binding energies with the experiments to give reactivity-selectivity descriptors. This gives an atomic-scale mechanistic understanding of potential-dependent CO and hydrocarbon selectivity from the M–N x moieties and it provides predictive guidelines for the rational design of selective carbon-based CO 2 reduction catalysts.
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