TY - JOUR
T1 - Quasi-Covalently Coupled Ni-Cu Atomic Pair for Synergistic Electroreduction of CO2
AU - Zhu, Jianbing
AU - Xiao, Meiling
AU - Ren, Dezhang
AU - Gao, Rui
AU - Liu, Xiaozhi
AU - Zhang, Zhen
AU - Luo, Dan
AU - Xing, Wei
AU - Su, Dong
AU - Yu, Aiping
AU - Chen, Zhongwei
N1 - Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/6/8
Y1 - 2022/6/8
N2 - Developing highly active, selective, and stable electrocatalysts for the carbon dioxide reduction reaction (CO2RR) is crucial to establish a CO2conversion system for industrial implementation and, therefore, to realize an artificially closed carbon loop. This can only be achieved through the rational material design based upon the knowledge of the operational active site at the molecular scale. Enlightened by theoretical screening, herein, we for the first time manipulate a novel Ni-Cu atomic pair configuration toward improved CO2RR performance. Systematic characterizations and theoretical modeling reveal that the secondary Cu metal incorporation positively shifts the Ni 3d orbital energy to the Fermi level and thus accelerates the rate-determining step, *COOH formation. In addition, the intrinsic inactivity of Cu toward the competing hydrogen evolution reaction causes a considerable reaction barrier for water dissociation on the Ni-Cu moiety. Due to these attributes, the as-developed Ni/Cu-N-C catalyst exhibits excellent catalytic activity and selectivity, with a record-high turnover frequency of 20,695 h-1at -0.6 V (vs RHE) and a maximum Faradaic efficiency of 97.7% for CO production. Furthermore, the dynamic structure evolution monitored by operando X-ray absorption fine-structure spectroscopy unveils the interaction between the Ni center and CO2molecules and the synergistic effect of the Ni-Cu atomic pair on CO2RR activity.
AB - Developing highly active, selective, and stable electrocatalysts for the carbon dioxide reduction reaction (CO2RR) is crucial to establish a CO2conversion system for industrial implementation and, therefore, to realize an artificially closed carbon loop. This can only be achieved through the rational material design based upon the knowledge of the operational active site at the molecular scale. Enlightened by theoretical screening, herein, we for the first time manipulate a novel Ni-Cu atomic pair configuration toward improved CO2RR performance. Systematic characterizations and theoretical modeling reveal that the secondary Cu metal incorporation positively shifts the Ni 3d orbital energy to the Fermi level and thus accelerates the rate-determining step, *COOH formation. In addition, the intrinsic inactivity of Cu toward the competing hydrogen evolution reaction causes a considerable reaction barrier for water dissociation on the Ni-Cu moiety. Due to these attributes, the as-developed Ni/Cu-N-C catalyst exhibits excellent catalytic activity and selectivity, with a record-high turnover frequency of 20,695 h-1at -0.6 V (vs RHE) and a maximum Faradaic efficiency of 97.7% for CO production. Furthermore, the dynamic structure evolution monitored by operando X-ray absorption fine-structure spectroscopy unveils the interaction between the Ni center and CO2molecules and the synergistic effect of the Ni-Cu atomic pair on CO2RR activity.
UR - http://www.scopus.com/inward/record.url?scp=85131771572&partnerID=8YFLogxK
U2 - 10.1021/jacs.2c00937
DO - 10.1021/jacs.2c00937
M3 - 文章
C2 - 35622935
AN - SCOPUS:85131771572
SN - 0002-7863
VL - 144
SP - 9661
EP - 9671
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 22
ER -