电化学
催化作用
单层
氧化还原
化学
密度泛函理论
电催化剂
可逆氢电极
吸附
钴
化学物理
溶剂化
计算化学
材料科学
物理化学
电极
无机化学
纳米技术
分子
工作电极
有机化学
作者
Tao Wang,Long Zhou,Shuwei Xia,Liang Yu
标识
DOI:10.1021/acs.jpcc.2c08319
摘要
Cobalt-doped phthalocyanine monolayer (Co-Pc) catalyst has shown promising performance in electrochemical CO2 reduction experimentally. However, most theoretic investigations based on computational hydrogen electrode (CHE) model inaccurately predict catalytic behaviors and exhibit contradictive mechanistic pathways. In this work, grand canonical density functional theory (GC-DFT) combined CANDLE continuum solvation model was used to more precisely simulate CO2RR upon Co-Pc. The calculation results reasonably explained the activation of CO2 and HER (hydrogen evolution reaction) competition and also predicted potential determined step and onset potential, which all are excellently consistent with experimental values. The potential-dependent competition among physical and chemical adsorption of CO2 and H formation and the reason for high CO2RR selectivity at a specific potential range were well explained: the charge of the reaction intermediate is the key to potential-dependent behaviors; larger electron transfer in H adsorption than CO2 adsorption is the primary reason for HER suppression of CO2RR at high potential. This is a general phenomenon seen in various heterogeneous catalysts, hindering practical electrochemical CO2RR.
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