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Switching the O-O Bond Formation Pathways of Ru-pda Water Oxidation Catalyst by Third Coordination Sphere Engineering

Water oxidation is a vital anodic reaction for renewable fuel generation via electrochemical- and photoelectrochemical-driven water splitting or CO(2) reduction. Ruthenium complexes, such as Ru-bda family, have been shown as highly efficient water-oxidation catalysts (WOCs), particularly when they u...

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Autores principales: Li, Yingzheng, Zhan, Shaoqi, Tong, Lianpeng, Li, Wenlong, Zhao, Yilong, Zhao, Ziqi, Liu, Chang, Ahlquist, Mårten S. G., Li, Fusheng, Sun, Licheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8061195/
https://www.ncbi.nlm.nih.gov/pubmed/33954292
http://dx.doi.org/10.34133/2021/9851231
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author Li, Yingzheng
Zhan, Shaoqi
Tong, Lianpeng
Li, Wenlong
Zhao, Yilong
Zhao, Ziqi
Liu, Chang
Ahlquist, Mårten S. G.
Li, Fusheng
Sun, Licheng
author_facet Li, Yingzheng
Zhan, Shaoqi
Tong, Lianpeng
Li, Wenlong
Zhao, Yilong
Zhao, Ziqi
Liu, Chang
Ahlquist, Mårten S. G.
Li, Fusheng
Sun, Licheng
author_sort Li, Yingzheng
collection PubMed
description Water oxidation is a vital anodic reaction for renewable fuel generation via electrochemical- and photoelectrochemical-driven water splitting or CO(2) reduction. Ruthenium complexes, such as Ru-bda family, have been shown as highly efficient water-oxidation catalysts (WOCs), particularly when they undergo a bimolecular O-O bond formation pathway. In this study, a novel Ru(pda)-type (pda(2–) =1,10-phenanthroline-2,9-dicarboxylate) molecular WOC with 4-vinylpyridine axial ligands was immobilized on the glassy carbon electrode surface by electrochemical polymerization. Electrochemical kinetic studies revealed that this homocoupling polymer catalyzes water oxidation through a bimolecular radical coupling pathway, where interaction between two Ru(pda)–oxyl moieties (I2M) forms the O-O bond. The calculated barrier of the I2M pathway by density-functional theory (DFT) is significantly lower than the barrier of a water nucleophilic attack (WNA) pathway. By using this polymerization strategy, the Ru centers are brought closer in the distance, and the O-O bond formation pathway by the Ru (pda) catalyst is switched from WNA in a homogeneous molecular catalytic system to I2M in the polymerized film, providing some deep insights into the importance of third coordination sphere engineering of the water oxidation catalyst.
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spelling pubmed-80611952021-05-04 Switching the O-O Bond Formation Pathways of Ru-pda Water Oxidation Catalyst by Third Coordination Sphere Engineering Li, Yingzheng Zhan, Shaoqi Tong, Lianpeng Li, Wenlong Zhao, Yilong Zhao, Ziqi Liu, Chang Ahlquist, Mårten S. G. Li, Fusheng Sun, Licheng Research (Wash D C) Research Article Water oxidation is a vital anodic reaction for renewable fuel generation via electrochemical- and photoelectrochemical-driven water splitting or CO(2) reduction. Ruthenium complexes, such as Ru-bda family, have been shown as highly efficient water-oxidation catalysts (WOCs), particularly when they undergo a bimolecular O-O bond formation pathway. In this study, a novel Ru(pda)-type (pda(2–) =1,10-phenanthroline-2,9-dicarboxylate) molecular WOC with 4-vinylpyridine axial ligands was immobilized on the glassy carbon electrode surface by electrochemical polymerization. Electrochemical kinetic studies revealed that this homocoupling polymer catalyzes water oxidation through a bimolecular radical coupling pathway, where interaction between two Ru(pda)–oxyl moieties (I2M) forms the O-O bond. The calculated barrier of the I2M pathway by density-functional theory (DFT) is significantly lower than the barrier of a water nucleophilic attack (WNA) pathway. By using this polymerization strategy, the Ru centers are brought closer in the distance, and the O-O bond formation pathway by the Ru (pda) catalyst is switched from WNA in a homogeneous molecular catalytic system to I2M in the polymerized film, providing some deep insights into the importance of third coordination sphere engineering of the water oxidation catalyst. AAAS 2021-04-13 /pmc/articles/PMC8061195/ /pubmed/33954292 http://dx.doi.org/10.34133/2021/9851231 Text en Copyright © 2021 Yingzheng Li et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Li, Yingzheng
Zhan, Shaoqi
Tong, Lianpeng
Li, Wenlong
Zhao, Yilong
Zhao, Ziqi
Liu, Chang
Ahlquist, Mårten S. G.
Li, Fusheng
Sun, Licheng
Switching the O-O Bond Formation Pathways of Ru-pda Water Oxidation Catalyst by Third Coordination Sphere Engineering
title Switching the O-O Bond Formation Pathways of Ru-pda Water Oxidation Catalyst by Third Coordination Sphere Engineering
title_full Switching the O-O Bond Formation Pathways of Ru-pda Water Oxidation Catalyst by Third Coordination Sphere Engineering
title_fullStr Switching the O-O Bond Formation Pathways of Ru-pda Water Oxidation Catalyst by Third Coordination Sphere Engineering
title_full_unstemmed Switching the O-O Bond Formation Pathways of Ru-pda Water Oxidation Catalyst by Third Coordination Sphere Engineering
title_short Switching the O-O Bond Formation Pathways of Ru-pda Water Oxidation Catalyst by Third Coordination Sphere Engineering
title_sort switching the o-o bond formation pathways of ru-pda water oxidation catalyst by third coordination sphere engineering
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8061195/
https://www.ncbi.nlm.nih.gov/pubmed/33954292
http://dx.doi.org/10.34133/2021/9851231
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