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Theoretical study on the mechanism of water oxidation catalyzed by a mononuclear copper complex: important roles of a redox non-innocent ligand and HPO(4)(2−) anion

The water oxidation reaction is the bottleneck problem of the artificial photosynthetic system. In this work, the mechanism of water oxidation catalyzed by a mononuclear copper complex in alkaline conditions was studied by density functional calculations. Firstly, a water molecule coordinating with...

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Autores principales: Li, Ying-Ying, Wang, Xiao-Yan, Li, Hui-Ji, Chen, Jia-Yi, Kou, Yao-Hua, Li, Xiao, Wang, Yaping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10011972/
https://www.ncbi.nlm.nih.gov/pubmed/36926005
http://dx.doi.org/10.1039/d3ra00648d
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author Li, Ying-Ying
Wang, Xiao-Yan
Li, Hui-Ji
Chen, Jia-Yi
Kou, Yao-Hua
Li, Xiao
Wang, Yaping
author_facet Li, Ying-Ying
Wang, Xiao-Yan
Li, Hui-Ji
Chen, Jia-Yi
Kou, Yao-Hua
Li, Xiao
Wang, Yaping
author_sort Li, Ying-Ying
collection PubMed
description The water oxidation reaction is the bottleneck problem of the artificial photosynthetic system. In this work, the mechanism of water oxidation catalyzed by a mononuclear copper complex in alkaline conditions was studied by density functional calculations. Firstly, a water molecule coordinating with the copper center of the complex (Cu(ii), 1) generates Cu(ii)–H(2)O (2). 2 undergoes two proton-coupled electron transfer processes to produce intermediate (4). The oxidation process occurs mainly on the ligand moiety, and 4 (˙L–Cu(ii)–O˙) can be described as a Cu(ii) center interacting with a ligand radical antiferromagnetically and an oxyl radical ferromagnetically. 4 is the active species that can trigger O–O bond formation via the water nucleophilic attack mechanism. This process occurs in a step-wise manner. The attacking water transfers one of the protons to the HPO(4)(2−) coupled with an electron transfer to the ligand radical, which generates a transient OH˙ interacting with the oxyl radical and H(2)PO(4)(−). Then the O–O bond is formed through the direct coupling of the oxo radical and the OH radical. The triplet di-oxygen could be released after two oxidation processes. According to the Gibbs free energy diagram, the O–O bond formation was suggested to be the rate-limiting step with a calculated total barrier of 19.5 kcal mol(−1). More importantly, the copper complex catalyzing water oxidation with the help of a redox non-innocent ligand and HPO(4)(2−) was emphasized.
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spelling pubmed-100119722023-03-15 Theoretical study on the mechanism of water oxidation catalyzed by a mononuclear copper complex: important roles of a redox non-innocent ligand and HPO(4)(2−) anion Li, Ying-Ying Wang, Xiao-Yan Li, Hui-Ji Chen, Jia-Yi Kou, Yao-Hua Li, Xiao Wang, Yaping RSC Adv Chemistry The water oxidation reaction is the bottleneck problem of the artificial photosynthetic system. In this work, the mechanism of water oxidation catalyzed by a mononuclear copper complex in alkaline conditions was studied by density functional calculations. Firstly, a water molecule coordinating with the copper center of the complex (Cu(ii), 1) generates Cu(ii)–H(2)O (2). 2 undergoes two proton-coupled electron transfer processes to produce intermediate (4). The oxidation process occurs mainly on the ligand moiety, and 4 (˙L–Cu(ii)–O˙) can be described as a Cu(ii) center interacting with a ligand radical antiferromagnetically and an oxyl radical ferromagnetically. 4 is the active species that can trigger O–O bond formation via the water nucleophilic attack mechanism. This process occurs in a step-wise manner. The attacking water transfers one of the protons to the HPO(4)(2−) coupled with an electron transfer to the ligand radical, which generates a transient OH˙ interacting with the oxyl radical and H(2)PO(4)(−). Then the O–O bond is formed through the direct coupling of the oxo radical and the OH radical. The triplet di-oxygen could be released after two oxidation processes. According to the Gibbs free energy diagram, the O–O bond formation was suggested to be the rate-limiting step with a calculated total barrier of 19.5 kcal mol(−1). More importantly, the copper complex catalyzing water oxidation with the help of a redox non-innocent ligand and HPO(4)(2−) was emphasized. The Royal Society of Chemistry 2023-03-14 /pmc/articles/PMC10011972/ /pubmed/36926005 http://dx.doi.org/10.1039/d3ra00648d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Li, Ying-Ying
Wang, Xiao-Yan
Li, Hui-Ji
Chen, Jia-Yi
Kou, Yao-Hua
Li, Xiao
Wang, Yaping
Theoretical study on the mechanism of water oxidation catalyzed by a mononuclear copper complex: important roles of a redox non-innocent ligand and HPO(4)(2−) anion
title Theoretical study on the mechanism of water oxidation catalyzed by a mononuclear copper complex: important roles of a redox non-innocent ligand and HPO(4)(2−) anion
title_full Theoretical study on the mechanism of water oxidation catalyzed by a mononuclear copper complex: important roles of a redox non-innocent ligand and HPO(4)(2−) anion
title_fullStr Theoretical study on the mechanism of water oxidation catalyzed by a mononuclear copper complex: important roles of a redox non-innocent ligand and HPO(4)(2−) anion
title_full_unstemmed Theoretical study on the mechanism of water oxidation catalyzed by a mononuclear copper complex: important roles of a redox non-innocent ligand and HPO(4)(2−) anion
title_short Theoretical study on the mechanism of water oxidation catalyzed by a mononuclear copper complex: important roles of a redox non-innocent ligand and HPO(4)(2−) anion
title_sort theoretical study on the mechanism of water oxidation catalyzed by a mononuclear copper complex: important roles of a redox non-innocent ligand and hpo(4)(2−) anion
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10011972/
https://www.ncbi.nlm.nih.gov/pubmed/36926005
http://dx.doi.org/10.1039/d3ra00648d
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