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Exploring the Parameters Controlling Product Selectivity in Electrochemical CO(2) Reduction in Competition with Hydrogen Evolution Employing Manganese Bipyridine Complexes

[Image: see text] Selective reduction of CO(2) is an efficient solution for producing nonfossil-based chemical feedstocks and simultaneously alleviating the increasing atmospheric concentration of this greenhouse gas. With this aim, molecular electrocatalysts are being extensively studied, although...

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Autores principales: Hong, Wanwan, Luthra, Mahika, Jakobsen, Joakim B., Madsen, Monica R., Castro, Abril C., Hammershøj, Hans Christian D., Pedersen, Steen U., Balcells, David, Skrydstrup, Troels, Daasbjerg, Kim, Nova, Ainara
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9990071/
https://www.ncbi.nlm.nih.gov/pubmed/36910875
http://dx.doi.org/10.1021/acscatal.2c05951
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author Hong, Wanwan
Luthra, Mahika
Jakobsen, Joakim B.
Madsen, Monica R.
Castro, Abril C.
Hammershøj, Hans Christian D.
Pedersen, Steen U.
Balcells, David
Skrydstrup, Troels
Daasbjerg, Kim
Nova, Ainara
author_facet Hong, Wanwan
Luthra, Mahika
Jakobsen, Joakim B.
Madsen, Monica R.
Castro, Abril C.
Hammershøj, Hans Christian D.
Pedersen, Steen U.
Balcells, David
Skrydstrup, Troels
Daasbjerg, Kim
Nova, Ainara
author_sort Hong, Wanwan
collection PubMed
description [Image: see text] Selective reduction of CO(2) is an efficient solution for producing nonfossil-based chemical feedstocks and simultaneously alleviating the increasing atmospheric concentration of this greenhouse gas. With this aim, molecular electrocatalysts are being extensively studied, although selectivity remains an issue. In this work, a combined experimental–computational study explores how the molecular structure of Mn-based complexes determines the dominant product in the reduction of CO(2) to HCOOH, CO, and H(2). In contrast to previous Mn(bpy-R)(CO)(3)Br catalysts containing alkyl amines in the vicinity of the Br ligand, here, we report that bpy-based macrocycles locking these amines at the side opposite to the Br ligand change the product selectivity from HCOOH to H(2). Ab initio molecular dynamics simulations of the active species showed that free rotation of the Mn(CO)(3) moiety allows for the approach of the protonated amine to the reactive center yielding a Mn-hydride intermediate, which is the key in the formation of H(2) and HCOOH. Additional studies with DFT methods showed that the macrocyclic moiety hinders the insertion of CO(2) to the metal hydride favoring the formation of H(2) over HCOOH. Further, our results suggest that the minor CO product observed experimentally is formed when CO(2) adds to Mn on the side opposite to the amine ligand before protonation. These results show how product selectivity can be modulated by ligand design in Mn-based catalysts, providing atomistic details that can be leveraged in the development of a fully selective system.
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spelling pubmed-99900712023-03-08 Exploring the Parameters Controlling Product Selectivity in Electrochemical CO(2) Reduction in Competition with Hydrogen Evolution Employing Manganese Bipyridine Complexes Hong, Wanwan Luthra, Mahika Jakobsen, Joakim B. Madsen, Monica R. Castro, Abril C. Hammershøj, Hans Christian D. Pedersen, Steen U. Balcells, David Skrydstrup, Troels Daasbjerg, Kim Nova, Ainara ACS Catal [Image: see text] Selective reduction of CO(2) is an efficient solution for producing nonfossil-based chemical feedstocks and simultaneously alleviating the increasing atmospheric concentration of this greenhouse gas. With this aim, molecular electrocatalysts are being extensively studied, although selectivity remains an issue. In this work, a combined experimental–computational study explores how the molecular structure of Mn-based complexes determines the dominant product in the reduction of CO(2) to HCOOH, CO, and H(2). In contrast to previous Mn(bpy-R)(CO)(3)Br catalysts containing alkyl amines in the vicinity of the Br ligand, here, we report that bpy-based macrocycles locking these amines at the side opposite to the Br ligand change the product selectivity from HCOOH to H(2). Ab initio molecular dynamics simulations of the active species showed that free rotation of the Mn(CO)(3) moiety allows for the approach of the protonated amine to the reactive center yielding a Mn-hydride intermediate, which is the key in the formation of H(2) and HCOOH. Additional studies with DFT methods showed that the macrocyclic moiety hinders the insertion of CO(2) to the metal hydride favoring the formation of H(2) over HCOOH. Further, our results suggest that the minor CO product observed experimentally is formed when CO(2) adds to Mn on the side opposite to the amine ligand before protonation. These results show how product selectivity can be modulated by ligand design in Mn-based catalysts, providing atomistic details that can be leveraged in the development of a fully selective system. American Chemical Society 2023-02-16 /pmc/articles/PMC9990071/ /pubmed/36910875 http://dx.doi.org/10.1021/acscatal.2c05951 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Hong, Wanwan
Luthra, Mahika
Jakobsen, Joakim B.
Madsen, Monica R.
Castro, Abril C.
Hammershøj, Hans Christian D.
Pedersen, Steen U.
Balcells, David
Skrydstrup, Troels
Daasbjerg, Kim
Nova, Ainara
Exploring the Parameters Controlling Product Selectivity in Electrochemical CO(2) Reduction in Competition with Hydrogen Evolution Employing Manganese Bipyridine Complexes
title Exploring the Parameters Controlling Product Selectivity in Electrochemical CO(2) Reduction in Competition with Hydrogen Evolution Employing Manganese Bipyridine Complexes
title_full Exploring the Parameters Controlling Product Selectivity in Electrochemical CO(2) Reduction in Competition with Hydrogen Evolution Employing Manganese Bipyridine Complexes
title_fullStr Exploring the Parameters Controlling Product Selectivity in Electrochemical CO(2) Reduction in Competition with Hydrogen Evolution Employing Manganese Bipyridine Complexes
title_full_unstemmed Exploring the Parameters Controlling Product Selectivity in Electrochemical CO(2) Reduction in Competition with Hydrogen Evolution Employing Manganese Bipyridine Complexes
title_short Exploring the Parameters Controlling Product Selectivity in Electrochemical CO(2) Reduction in Competition with Hydrogen Evolution Employing Manganese Bipyridine Complexes
title_sort exploring the parameters controlling product selectivity in electrochemical co(2) reduction in competition with hydrogen evolution employing manganese bipyridine complexes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9990071/
https://www.ncbi.nlm.nih.gov/pubmed/36910875
http://dx.doi.org/10.1021/acscatal.2c05951
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