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单核铜配合物催化水氧化机理的理论研究:氧化还原非无辜配体和HPO阴离子的重要作用

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

作者信息

Li Ying-Ying, Wang Xiao-Yan, Li Hui-Ji, Chen Jia-Yi, Kou Yao-Hua, Li Xiao, Wang Yaping

机构信息

School of Chemistry and Chemical Engineering, Zhengzhou Normal University Zhengzhou 450044 China

Key Laboratory of Material Chemistry for Energy Conversion and Storage, Ministry of Education, Hubei Key Laboratory of Bioinorganic Chemistry and Materia Medica, Hubei Key Laboratory of Materials Chemistry and Service Failure, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology Wuhan 430074 P. R. China.

出版信息

RSC Adv. 2023 Mar 14;13(12):8352-8359. doi: 10.1039/d3ra00648d. eCollection 2023 Mar 8.

Abstract

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, 1) generates Cu-HO (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-O˙) can be described as a Cu center interacting with a ligand radical antiferromagnetically and an oxyl radical ferromagnetically. 4 is the active species that can trigger O-O bond formation the water nucleophilic attack mechanism. This process occurs in a step-wise manner. The attacking water transfers one of the protons to the HPO coupled with an electron transfer to the ligand radical, which generates a transient OH˙ interacting with the oxyl radical and HPO . 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. More importantly, the copper complex catalyzing water oxidation with the help of a redox non-innocent ligand and HPO was emphasized.

摘要

水氧化反应是人工光合系统的瓶颈问题。在本工作中,通过密度泛函计算研究了单核铜配合物在碱性条件下催化水氧化的机理。首先,与配合物的铜中心(Cu,1)配位的一个水分子生成Cu-HO(2)。2经历两个质子耦合电子转移过程生成中间体(4)。氧化过程主要发生在配体部分,4(˙L-Cu-O˙)可描述为一个铜中心与一个配体自由基反铁磁相互作用以及与一个氧自由基铁磁相互作用。4是能够触发O-O键形成的活性物种,通过水亲核攻击机制。这个过程以逐步方式发生。进攻的水将其中一个质子转移到HPO上,同时伴随着一个电子转移到配体自由基上,这产生了一个与氧自由基和HPO相互作用的瞬态OH˙。然后通过氧自由基和OH自由基的直接耦合形成O-O键。经过两次氧化过程后,三线态双氧可以释放出来。根据吉布斯自由能图,O-O键的形成被认为是速率限制步骤,计算得到的总势垒为19.5 kcal mol。更重要的是,强调了铜配合物在氧化还原非无辜配体和HPO的帮助下催化水氧化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b56/10011972/c610e5bdc414/d3ra00648d-f1.jpg

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