The Use of Density Functional Theory to Decipher the Electrochemical Activity of Metal Clathrochelates with Regard to the Hydrogen Evolution Reaction in the Homogeneous Phase

M. Antuch, P. Millet
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Abstract

The energetic needs of a rising human population have led to the search for alternative energy sources. A promising route for the large-scale storage of renewable energy is water electrolysis, which is performed with a proton-conducting polymer electrolyte. However, only platinum group metal electrocatalysts have the adequate properties to minimize the overvoltages associated with either hydrogen or oxygen evolution reactions. Alternative materials based on transition metals are scarce, but molecular electrochemistry offers some alternatives. In particular, transition metal clathrochelates exhibit an interesting activity with regard to the hydrogen evolution reaction (HER). However, such complexes form a vast family, and there is a need to implement screening approaches to identify the most performing ones. Theoretical studies on molecular electrocatalysts are adequate for this purpose, since density functional theory (DFT) has a strong predicting capability to provide clues for the improvement of practical devices. This chapter describes the most recent theoretical methods applied to several members of the clathrochelate family. We describe the computation of their common spectroscopic and electrochemical properties. In addition, DFT analysis is used to decipher the multistep reaction mechanism of a model Co clathrochelate with regard to the hydrogen evolution reaction in the homogeneous phase.
用密度泛函理论解析金属螯合物在均相析氢反应中的电化学活性
不断增长的人口对能源的需求促使人们寻找替代能源。水电解是大规模存储可再生能源的一个有前途的途径,它是用质子导电聚合物电解质进行的。然而,只有铂族金属电催化剂具有足够的性能来最小化与氢或氧释放反应相关的过电压。基于过渡金属的替代材料很少,但分子电化学提供了一些替代方案。特别是,过渡金属螯合物在析氢反应(HER)方面表现出有趣的活性。然而,这些复合物形成了一个庞大的家族,需要实施筛选方法来确定表现最好的。分子电催化剂的理论研究是足够的,因为密度泛函理论(DFT)具有很强的预测能力,可以为实际装置的改进提供线索。本章描述了应用于螯合物家族几个成员的最新理论方法。我们描述了它们共同的光谱和电化学性质的计算。此外,利用离散傅里叶变换(DFT)分析了Co螯合物模型在均相中析氢反应的多步反应机理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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