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Combining molecular dynamics and ab initio quantum-chemistry to describe electron transfer reactions in electrochemical environments

机译:结合分子动力学和从头算量子化学来描述电化学环境中的电子转移反应

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摘要

A theoretical model is presented aimed to provide a detailed microscopic description of the electron transfer reaction in an electrochemical environment. The present approach is based on the well-known two state model extended by the novelty that the energy of the two states involved in the electron transfer reaction is computed quantum mechanically as a function of the solvent coordinate, as defined in the Marcus theory, and of the intensity of an external electric field. The solvent conformations defining the reaction coordinate are obtained from classical molecular dynamics and then transferred to the quantum mechanical model. The overall approach has been applied to the electron transfer between a chloride anion and a single crystal Cu(100) electrode. It is found that the solvent exerts a strong influence on the equilibrium geometry of the halide and hence on the relative energy of the two states involved in the electron transfer reaction. Finally, both solvent fluctuations and external field facilitate the electron transfer although solvent effects have a stronger influence.
机译:提出了旨在提供电化学环境中电子转移反应的详细微观描述的理论模型。本方法基于众所周知的两态模型,该模型通过新颖性扩展:电子转移反应中涉及的两个态的能量是根据Marcus理论中定义的溶剂力学坐标量子力学地计算的,并且外部电场的强度。定义反应坐标的溶剂构象是从经典分子动力学中获得的,然后转移到量子力学模型中。整体方法已应用于氯离子和单晶Cu(100)电极之间的电子转移。发现溶剂对卤化物的平衡几何形状有很大影响,因此对电子转移反应中涉及的两种状态的相对能量有很大的影响。最后,尽管溶剂效应具有更强的影响,但溶剂波动和外场都促进了电子转移。

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