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Unified Approach to Implicit and Explicit Solvent Simulations of Electrochemical Reaction Energetics

机译:电化学反应能量造成统一和明确溶剂模拟的统一方法

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One of the major open challenges in ab initio simulations of the electrochemical interface is the determination of electrochemical barriers under a constant driving force. Existing methods to do so include extrapolation techniques based on fully explicit treatments of the electrolyte, as well as implicit solvent models which allow for a continuous variation in electrolyte charge. Emerging hybrid continuum models have the potential to revolutionize the field, since they account for the electrolyte with little computational cost while retaining some explicit electrolyte, representing a “best of both worlds” method. In this work, we present a unified approach to determine reaction energetics from fully explicit, implicit, and hybrid treatments of the electrolyte based on a new multicapacitor model of the electrochemical interface. A given electrode potential can be achieved by a variety of interfacial structures; a crucial insight from this work is that the effective surface charge gives a good proxy of the local potential, the true driving force of electrochemical processes. In contrast, we show that the traditionally considered work function gives rise to multivalued functions depending on the simulation cell size. Furthermore, we show that the reaction energetics are largely insensitive to the countercharge distribution chosen in hybrid implicit/explicit models, which means that any of the myriad implicit electrolyte models can be equivalently applied. This work thus paves the way for the accurate treatment of ab initio reaction energetics of general surface electrochemical processes using both implicit and explicit electrolytes.
机译:电化学界面的AB Initio模拟中的主要开放挑战之一是在恒定驱动力下测定电化学屏障。本现有的方法包括基于完全明确的电解质处理的外推技术,以及隐含溶剂模型,其允许电解质电荷的连续变化。新兴的混合式连续体型有可能彻底改变现场,因为它们占电解质,而电解质具有少量的计算成本,同时保留了一些明确的电解质,代表了“最好的两个世界”方法。在这项工作中,我们提出了一种统一的方法,以根据电化学界面的新多涂料模型来确定电解质的完全明确,隐含和混合处理的反应能量。通过各种界面结构可以实现给定的电极电位;这项工作的重要洞察力是有效表面电荷提供了良好的局部电位代理,电化学过程的真正驱动力。相比之下,我们表明传统上被认为的工作函数引起了多值函数,具体取决于模拟单元尺寸。此外,我们表明,反应能量对混合隐式/显式模型中选择的反应收费性分布很不敏感,这意味着可以等效地应用任何无数隐式电解质模型。因此,这项工作铺平了使用隐式和显式电解质的一般表面电化学过程AB Initio反应能量的准确处理方式。

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