质子耦合电子转移
激发态
化学
密度泛函理论
电子转移
原子物理学
动力学同位素效应
非绝热的
反应速率常数
超级交换
极化子
势能面
质子
马库斯理论
势能
电子
从头算
物理化学
计算化学
物理
氘
量子力学
离子
绝热过程
动力学
有机化学
作者
Robert E. Warburton,Alexander V. Soudackov,Sharon Hammes‐Schiffer
标识
DOI:10.1021/acs.jpcc.4c00458
摘要
Proton-coupled electron transfer (PCET) reactions on semiconducting metal oxide surfaces often involve charged defects in the form of electron or hole polarons. Herein, vibronically nonadiabatic PCET theory is used to model rate constants for the PCET reaction between a reduced anatase TiO2(101) surface and 4-MeO-TEMPO, where electron polarons on the TiO2 surface directly participate in the PCET reaction. This modeling strategy treats the transferring proton as well as all electrons quantum mechanically and includes the effects of excited vibronic states. The rate constant expression depends on the reorganization energy, as well as the reaction free energies and vibronic couplings for different pairs of vibronic states, and accounts for proton donor–acceptor motion. Hybrid functional periodic density functional theory (DFT) is used to calculate the parameters in the rate constant expression, and a Hubbard α-based constrained DFT approach is used to enforce charge constraints consistent with the two electronically diabatic states for the PCET reaction. This modeling strategy is applied to compute the PCET rate constants and kinetic isotope effects for reactions involving five-coordinate and six-coordinate Ti3+ defects on the TiO2(101) surface, showing that excited vibronic states contribute significantly to the rate constant for both defects, especially for deuterium. This study highlights the importance of hydrogen tunneling and excited vibronic states in interfacial PCET reactions. Such modeling strategies can be used to further understand and tailor the reactivity of metal oxide surfaces for energy conversion.
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