Electric Fields at Solid-Liquid Interfaces: Insights from Molecular Dynamics Simulation.

IF 11.7 1区 化学 Q1 CHEMISTRY, PHYSICAL
Julia A Nauman, Dylan Suvlu, Adam P Willard
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引用次数: 0

Abstract

In this review, we explore the electrostatic environment of the interface between a solid and dilute electrolyte solution, with an emphasis on the electric field profiles that these systems produce. We review the theoretical formalism that connects electrostatic potential profiles, electric field profiles, and charge density fields. This formalism has served as the basis for our understanding of interfacial electric fields and their influences on microscopic chemical and physical processes. Comparing various traditional models of interfacial electrostatics to the results of molecular dynamics (MD) simulation yields mutually inconsistent descriptions of the interfacial electric field profile. We present MD simulation results demonstrating that the average electric field profiles experienced by particles at the interface differ from the properties of traditional models and from the fields derived from the mean charge density of atomistic simulations. Furthermore, these experienced electric field profiles are species-dependent. Based on these results, we assert that a single unifying electrostatic potential profile-the gradient of which defines a single unifying electric field profile-cannot correctly predict the electrostatic forces that act on species at the interface.

固-液界面的电场:分子动力学模拟的启示。
在这篇综述中,我们探讨了固体和稀释电解质溶液之间界面的静电环境,重点是这些系统产生的电场分布。我们回顾了连接静电势分布、电场分布和电荷密度场的理论形式。这种形式为我们理解界面电场及其对微观化学和物理过程的影响提供了基础。将各种传统的界面静电模型与分子动力学(MD)模拟结果进行比较,发现界面电场分布的描述相互不一致。我们提出的MD模拟结果表明,粒子在界面处经历的平均电场分布不同于传统模型的性质,也不同于原子模拟的平均电荷密度场。此外,这些经验电场分布是物种依赖的。基于这些结果,我们断言,一个统一的静电势曲线——其梯度定义了一个统一的电场曲线——不能正确地预测作用于界面上物质的静电力。
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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来源期刊
CiteScore
28.00
自引率
0.00%
发文量
21
期刊介绍: The Annual Review of Physical Chemistry has been published since 1950 and is a comprehensive resource for significant advancements in the field. It encompasses various sub-disciplines such as biophysical chemistry, chemical kinetics, colloids, electrochemistry, geochemistry and cosmochemistry, chemistry of the atmosphere and climate, laser chemistry and ultrafast processes, the liquid state, magnetic resonance, physical organic chemistry, polymers and macromolecules, and others.
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