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Structure–activity relationship of Cu-based catalysts for the highly efficient CO(2) electrochemical reduction reaction

Electrocatalytic carbon dioxide reduction (CO(2)RR) is a relatively feasible method to reduce the atmospheric concentration of CO(2). Although a series of metal-based catalysts have gained interest for CO(2)RR, understanding the structure–activity relationship for Cu-based catalysts remains a great...

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Autores principales: An, Runzhi, Chen, Xuanqi, Fang, Qi, Meng, Yuxiao, Li, Xi, Cao, Yongyong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9947715/
https://www.ncbi.nlm.nih.gov/pubmed/36846850
http://dx.doi.org/10.3389/fchem.2023.1141453
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author An, Runzhi
Chen, Xuanqi
Fang, Qi
Meng, Yuxiao
Li, Xi
Cao, Yongyong
author_facet An, Runzhi
Chen, Xuanqi
Fang, Qi
Meng, Yuxiao
Li, Xi
Cao, Yongyong
author_sort An, Runzhi
collection PubMed
description Electrocatalytic carbon dioxide reduction (CO(2)RR) is a relatively feasible method to reduce the atmospheric concentration of CO(2). Although a series of metal-based catalysts have gained interest for CO(2)RR, understanding the structure–activity relationship for Cu-based catalysts remains a great challenge. Herein, three Cu-based catalysts with different sizes and compositions (Cu@CNTs, Cu(4)@CNTs, and CuNi(3)@CNTs) were designed to explore this relationship by density functional theory (DFT). The calculation results show a higher degree of CO(2) molecule activation on CuNi(3)@CNTs compared to that on Cu@CNTs and Cu(4)@CNTs. The methane (CH(4)) molecule is produced on both Cu@CNTs and CuNi(3)@CNTs, while carbon monoxide (CO) is synthesized on Cu(4)@CNTs. The Cu@CNTs showed higher activity for CH(4) production with a low overpotential value of 0.36 V compared to CuNi(3)@CNTs (0.60 V), with *CHO formation considered the potential-determining step (PDS). The overpotential value was only 0.02 V for *CO formation on the Cu(4)@CNTs, and *COOH formation was the PDS. The limiting potential difference analysis with the hydrogen evolution reaction (HER) indicated that the Cu@CNTs exhibited the highest selectivity of CH(4) among the three catalysts. Therefore, the sizes and compositions of Cu-based catalysts greatly influence CO(2)RR activity and selectivity. This study provides an innovative insight into the theoretical explanation of the origin of the size and composition effects to inform the design of highly efficient electrocatalysts.
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spelling pubmed-99477152023-02-24 Structure–activity relationship of Cu-based catalysts for the highly efficient CO(2) electrochemical reduction reaction An, Runzhi Chen, Xuanqi Fang, Qi Meng, Yuxiao Li, Xi Cao, Yongyong Front Chem Chemistry Electrocatalytic carbon dioxide reduction (CO(2)RR) is a relatively feasible method to reduce the atmospheric concentration of CO(2). Although a series of metal-based catalysts have gained interest for CO(2)RR, understanding the structure–activity relationship for Cu-based catalysts remains a great challenge. Herein, three Cu-based catalysts with different sizes and compositions (Cu@CNTs, Cu(4)@CNTs, and CuNi(3)@CNTs) were designed to explore this relationship by density functional theory (DFT). The calculation results show a higher degree of CO(2) molecule activation on CuNi(3)@CNTs compared to that on Cu@CNTs and Cu(4)@CNTs. The methane (CH(4)) molecule is produced on both Cu@CNTs and CuNi(3)@CNTs, while carbon monoxide (CO) is synthesized on Cu(4)@CNTs. The Cu@CNTs showed higher activity for CH(4) production with a low overpotential value of 0.36 V compared to CuNi(3)@CNTs (0.60 V), with *CHO formation considered the potential-determining step (PDS). The overpotential value was only 0.02 V for *CO formation on the Cu(4)@CNTs, and *COOH formation was the PDS. The limiting potential difference analysis with the hydrogen evolution reaction (HER) indicated that the Cu@CNTs exhibited the highest selectivity of CH(4) among the three catalysts. Therefore, the sizes and compositions of Cu-based catalysts greatly influence CO(2)RR activity and selectivity. This study provides an innovative insight into the theoretical explanation of the origin of the size and composition effects to inform the design of highly efficient electrocatalysts. Frontiers Media S.A. 2023-02-09 /pmc/articles/PMC9947715/ /pubmed/36846850 http://dx.doi.org/10.3389/fchem.2023.1141453 Text en Copyright © 2023 An, Chen, Fang, Meng, Li and Cao. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
An, Runzhi
Chen, Xuanqi
Fang, Qi
Meng, Yuxiao
Li, Xi
Cao, Yongyong
Structure–activity relationship of Cu-based catalysts for the highly efficient CO(2) electrochemical reduction reaction
title Structure–activity relationship of Cu-based catalysts for the highly efficient CO(2) electrochemical reduction reaction
title_full Structure–activity relationship of Cu-based catalysts for the highly efficient CO(2) electrochemical reduction reaction
title_fullStr Structure–activity relationship of Cu-based catalysts for the highly efficient CO(2) electrochemical reduction reaction
title_full_unstemmed Structure–activity relationship of Cu-based catalysts for the highly efficient CO(2) electrochemical reduction reaction
title_short Structure–activity relationship of Cu-based catalysts for the highly efficient CO(2) electrochemical reduction reaction
title_sort structure–activity relationship of cu-based catalysts for the highly efficient co(2) electrochemical reduction reaction
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9947715/
https://www.ncbi.nlm.nih.gov/pubmed/36846850
http://dx.doi.org/10.3389/fchem.2023.1141453
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