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阴离子对涉及五吡啶钴配合物的质子还原机制的作用:理论研究。

Role of Anation on the Mechanism of Proton Reduction Involving a Pentapyridine Cobalt Complex: A Theoretical Study.

机构信息

Department of Chemistry , Loyola College , Chennai 600 034 , Tamil Nadu , India.

Computational Chemistry Laboratory, Loyola Institute of Frontier Energy (LIFE) , Loyola College , Chennai 600 034 , Tamil Nadu , India.

出版信息

Inorg Chem. 2018 Jul 16;57(14):8116-8127. doi: 10.1021/acs.inorgchem.8b00286. Epub 2018 Jul 3.

Abstract

Kinetic and thermodynamic aspects of proton reduction involving pentapyridine cobalt(II) complex were investigated with the help of quantum chemical calculations. Free energy profile of all possible mechanistic routes for proton reduction was constructed with the consideration of both anation and solvent bound pathways. The computed free energy profile shows that acetate ion plays a significant role in modulating the kinetic aspects of Co(III)-hydride formation which is found to be the key intermediate for proton reduction. Upon replacing solvent by acetate ion, one electron reduction and protonation of Co species become more rapid along with slow displacement reaction. Most favorable pathways for hydrogen evolution from Co(III)-hydride species is also investigated. Among the four possible pathways, reduction followed by protonation of Co(III)-hydride (RPP) is found to be the most feasible pathway. On the basis of QTAIM and NBO analyses, the electronic origin of most favorable pathway is explained. The basicity of cobalt center along with thermodynamic stability of putative Co-H species is essentially a prime factor in deciding the most favorable pathway for hydrogen evolution. Our computed results are in good agreement with experimental observations and also provided adequate information to design cobalt-based molecular electrocatalysts for proton reduction in future.

摘要

利用量子化学计算研究了涉及五吡啶钴(II)配合物的质子还原的动力学和热力学方面。考虑到反离子和溶剂结合途径,构建了所有可能的质子还原机理途径的自由能轮廓。计算的自由能轮廓表明,乙酸根离子在调节 Co(III)-氢化物形成的动力学方面起着重要作用,Co(III)-氢化物是质子还原的关键中间体。用乙酸根离子取代溶剂后,Co 物种的单电子还原和质子化反应变得更快,同时取代反应变慢。还研究了 Co(III)-氢化物物种释放氢的最有利途径。在四种可能的途径中,发现 Co(III)-氢化物的还原随后质子化(RPP)是最可行的途径。基于 QTAIM 和 NBO 分析,解释了最有利途径的电子起源。钴中心的碱度以及假定的 Co-H 物种的热力学稳定性是决定氢释放最有利途径的主要因素。我们的计算结果与实验观察结果吻合较好,也为未来设计基于钴的分子电催化剂用于质子还原提供了充分的信息。

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