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电化学质子耦合电子转移的理论建模。

Theoretical Modeling of Electrochemical Proton-Coupled Electron Transfer.

机构信息

Department of Chemistry, Yale University, 225 Prospect Street, New Haven, Connecticut 06520, United States.

出版信息

Chem Rev. 2022 Jun 22;122(12):10599-10650. doi: 10.1021/acs.chemrev.1c00929. Epub 2022 Mar 1.

Abstract

Proton-coupled electron transfer (PCET) plays an essential role in a wide range of electrocatalytic processes. A vast array of theoretical and computational methods have been developed to study electrochemical PCET. These methods can be used to calculate redox potentials and p values for molecular electrocatalysts, proton-coupled redox potentials and bond dissociation free energies for PCET at metal and semiconductor interfaces, and reorganization energies associated with electrochemical PCET. Periodic density functional theory can also be used to compute PCET activation energies and perform molecular dynamics simulations of electrochemical interfaces. Various approaches for maintaining a constant electrode potential in electronic structure calculations and modeling complex interactions in the electric double layer (EDL) have been developed. Theoretical formulations for both homogeneous and heterogeneous electrochemical PCET spanning the adiabatic, nonadiabatic, and solvent-controlled regimes have been developed and provide analytical expressions for the rate constants and current densities as functions of applied potential. The quantum mechanical treatment of the proton and inclusion of excited vibronic states have been shown to be critical for describing experimental data, such as Tafel slopes and potential-dependent kinetic isotope effects. The calculated rate constants can be used as input to microkinetic models and voltammogram simulations to elucidate complex electrocatalytic processes.

摘要

质子耦合电子转移 (PCET) 在广泛的电催化过程中起着至关重要的作用。已经开发出大量的理论和计算方法来研究电化学 PCET。这些方法可用于计算分子电催化剂的氧化还原电位和 p 值、金属和半导体界面上 PCET 的质子耦合氧化还原电位和键离解自由能,以及与电化学 PCET 相关的重组能。周期性密度泛函理论也可用于计算 PCET 活化能并对电化学界面进行分子动力学模拟。已经开发出各种方法来保持电子结构计算中的电极电势恒定,并对双电层 (EDL) 中的复杂相互作用进行建模。已经开发出用于均相和非均相电化学 PCET 的理论公式,涵盖了绝热、非绝热和溶剂控制区域,并提供了作为施加电位函数的速率常数和电流密度的解析表达式。质子的量子力学处理和包含激发的振动态已被证明对于描述实验数据(如塔菲尔斜率和电位相关的动力学同位素效应)至关重要。计算出的速率常数可作为微动力学模型和伏安图模拟的输入,以阐明复杂的电催化过程。

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