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Charting C–C coupling pathways in electrochemical CO(2) reduction on Cu(111) using embedded correlated wavefunction theory

The electrochemical CO(2) reduction reaction (CO(2)RR) powered by excess zero-carbon-emission electricity to produce especially multicarbon (C(2+)) products could contribute to a carbon-neutral to carbon-negative economy. Foundational to the rational design of efficient, selective CO(2)RR electrocat...

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Autores principales: Zhao, Qing, Martirez, John Mark P., Carter, Emily A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9636923/
https://www.ncbi.nlm.nih.gov/pubmed/36306330
http://dx.doi.org/10.1073/pnas.2202931119
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author Zhao, Qing
Martirez, John Mark P.
Carter, Emily A.
author_facet Zhao, Qing
Martirez, John Mark P.
Carter, Emily A.
author_sort Zhao, Qing
collection PubMed
description The electrochemical CO(2) reduction reaction (CO(2)RR) powered by excess zero-carbon-emission electricity to produce especially multicarbon (C(2+)) products could contribute to a carbon-neutral to carbon-negative economy. Foundational to the rational design of efficient, selective CO(2)RR electrocatalysts is mechanistic analysis of the best metal catalyst thus far identified, namely, copper (Cu), via quantum mechanical computations to complement experiments. Here, we apply embedded correlated wavefunction (ECW) theory, which regionally corrects the electron exchange-correlation error in density functional theory (DFT) approximations, to examine multiple C–C coupling steps involving adsorbed CO (*CO) and its hydrogenated derivatives on the most ubiquitous facet, Cu(111). We predict that two adsorbed hydrogenated CO species, either *COH or *CHO, are necessary precursors for C–C bond formation. The three kinetically feasible pathways involving these species yield all three possible products: *COH–CHO, *COH–*COH, and *OCH–*OCH. The most kinetically favorable path forms *COH–CHO. In contrast, standard DFT approximations arrive at qualitatively different conclusions, namely, that only *CO and *COH will prevail on the surface and their C–C coupling paths produce only *COH–*COH and *CO–*CO, with a preference for the first product. This work demonstrates the importance of applying qualitatively and quantitatively accurate quantum mechanical method to simulate electrochemistry in order ultimately to shed light on ways to enhance selectivity toward C(2+) product formation via CO(2)RR electrocatalysts.
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spelling pubmed-96369232023-04-28 Charting C–C coupling pathways in electrochemical CO(2) reduction on Cu(111) using embedded correlated wavefunction theory Zhao, Qing Martirez, John Mark P. Carter, Emily A. Proc Natl Acad Sci U S A Physical Sciences The electrochemical CO(2) reduction reaction (CO(2)RR) powered by excess zero-carbon-emission electricity to produce especially multicarbon (C(2+)) products could contribute to a carbon-neutral to carbon-negative economy. Foundational to the rational design of efficient, selective CO(2)RR electrocatalysts is mechanistic analysis of the best metal catalyst thus far identified, namely, copper (Cu), via quantum mechanical computations to complement experiments. Here, we apply embedded correlated wavefunction (ECW) theory, which regionally corrects the electron exchange-correlation error in density functional theory (DFT) approximations, to examine multiple C–C coupling steps involving adsorbed CO (*CO) and its hydrogenated derivatives on the most ubiquitous facet, Cu(111). We predict that two adsorbed hydrogenated CO species, either *COH or *CHO, are necessary precursors for C–C bond formation. The three kinetically feasible pathways involving these species yield all three possible products: *COH–CHO, *COH–*COH, and *OCH–*OCH. The most kinetically favorable path forms *COH–CHO. In contrast, standard DFT approximations arrive at qualitatively different conclusions, namely, that only *CO and *COH will prevail on the surface and their C–C coupling paths produce only *COH–*COH and *CO–*CO, with a preference for the first product. This work demonstrates the importance of applying qualitatively and quantitatively accurate quantum mechanical method to simulate electrochemistry in order ultimately to shed light on ways to enhance selectivity toward C(2+) product formation via CO(2)RR electrocatalysts. National Academy of Sciences 2022-10-28 2022-11-01 /pmc/articles/PMC9636923/ /pubmed/36306330 http://dx.doi.org/10.1073/pnas.2202931119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Physical Sciences
Zhao, Qing
Martirez, John Mark P.
Carter, Emily A.
Charting C–C coupling pathways in electrochemical CO(2) reduction on Cu(111) using embedded correlated wavefunction theory
title Charting C–C coupling pathways in electrochemical CO(2) reduction on Cu(111) using embedded correlated wavefunction theory
title_full Charting C–C coupling pathways in electrochemical CO(2) reduction on Cu(111) using embedded correlated wavefunction theory
title_fullStr Charting C–C coupling pathways in electrochemical CO(2) reduction on Cu(111) using embedded correlated wavefunction theory
title_full_unstemmed Charting C–C coupling pathways in electrochemical CO(2) reduction on Cu(111) using embedded correlated wavefunction theory
title_short Charting C–C coupling pathways in electrochemical CO(2) reduction on Cu(111) using embedded correlated wavefunction theory
title_sort charting c–c coupling pathways in electrochemical co(2) reduction on cu(111) using embedded correlated wavefunction theory
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9636923/
https://www.ncbi.nlm.nih.gov/pubmed/36306330
http://dx.doi.org/10.1073/pnas.2202931119
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