TY - JOUR
T1 - Copper−iron dimer for selective C–C coupling in electrochemical CO2 reduction
AU - Xie, Heping
AU - Wang, Fuhuan
AU - Liu, Tao
AU - Wu, Yifan
AU - Lan, Cheng
AU - Chen, Bingbing
AU - Zhou, Jianqiu
AU - Chen, Bin
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2021/6/1
Y1 - 2021/6/1
N2 - The electrochemical CO2 reduction to fuels and chemicals using renewable electricity provides a promising strategy for resolving energy environmental crisis and achieving carbon neutral. Progress has been made on catalyst design for CO2 conversion to high valued products. However, the efficient production of multi−carbon compounds is very challenging due to low selectivity and high overpotential. Understanding of catalytic mechanism at the atom level is the key to developing high−performance CO2 reduction catalysts. Herein, employing comprehensive density functional theory computations, we systematically investigated the structures, reaction intermediates, CO2 reduction mechanisms, and the selectivity of state−of−art catalysts—heteronuclear CuFe dimers anchored on nitrogenated carbon monolayers as the CO2 reduction electrocatalysts. The results show that the strong binding between cooperative CuFe dimer and nitrogenated carbon matrix not only prevents the metal from clustering but also dictates favorable electronic structures, that explains their superior CO2 reduction activity, high C2H5OH selectivity and the mechanism of hydrogen evolution inhibition.
AB - The electrochemical CO2 reduction to fuels and chemicals using renewable electricity provides a promising strategy for resolving energy environmental crisis and achieving carbon neutral. Progress has been made on catalyst design for CO2 conversion to high valued products. However, the efficient production of multi−carbon compounds is very challenging due to low selectivity and high overpotential. Understanding of catalytic mechanism at the atom level is the key to developing high−performance CO2 reduction catalysts. Herein, employing comprehensive density functional theory computations, we systematically investigated the structures, reaction intermediates, CO2 reduction mechanisms, and the selectivity of state−of−art catalysts—heteronuclear CuFe dimers anchored on nitrogenated carbon monolayers as the CO2 reduction electrocatalysts. The results show that the strong binding between cooperative CuFe dimer and nitrogenated carbon matrix not only prevents the metal from clustering but also dictates favorable electronic structures, that explains their superior CO2 reduction activity, high C2H5OH selectivity and the mechanism of hydrogen evolution inhibition.
KW - CuFe dimers on carbon monolayer
KW - C–C coupling pathway
KW - Density functional theory
KW - Electrochemical CO reduction
KW - Reaction mechanism
UR - http://www.scopus.com/inward/record.url?scp=85103618568&partnerID=8YFLogxK
U2 - 10.1016/j.electacta.2021.138188
DO - 10.1016/j.electacta.2021.138188
M3 - 文章
AN - SCOPUS:85103618568
SN - 0013-4686
VL - 380
JO - Electrochimica Acta
JF - Electrochimica Acta
M1 - 138188
ER -