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Molecular Simulation of Electrode-Solution Interfaces
Annual Review of Physical Chemistry ( IF 11.7 ) Pub Date : 2021-04-20 , DOI: 10.1146/annurev-physchem-090519-024042
Laura Scalfi 1 , Mathieu Salanne 1, 2 , Benjamin Rotenberg 1, 2
Affiliation  

Many key industrial processes, from electricity production, conversion, and storage to electrocatalysis or electrochemistry in general, rely on physical mechanisms occurring at the interface between a metallic electrode and an electrolyte solution, summarized by the concept of an electric double layer, with the accumulation/depletion of electrons on the metal side and of ions on the liquid side. While electrostatic interactions play an essential role in the structure, thermodynamics, dynamics, and reactivity of electrode-electrolyte interfaces, these properties also crucially depend on the nature of the ions and solvent, as well as that of the metal itself. Such interfaces pose many challenges for modeling because they are a place where quantum chemistry meets statistical physics. In the present review, we explore the recent advances in the description and understanding of electrode-electrolyte interfaces with classical molecular simulations, with a focus on planar interfaces and solvent-based liquids, from pure solvent to water-in-salt electrolytes.

中文翻译:


电极-溶液界面的分子模拟

从发电,转换和存储到一般的电催化或电化学,许多关键的工业过程都依赖于在金属电极和电解质溶液之间的界面处发生的物理机制,如双电层的概念所概括,并具有累积性。在金属侧的电子/和在液体侧的离子的耗尽。尽管静电相互作用在电极-电解质界面的结构,热力学,动力学和反应性中起着至关重要的作用,但这些特性还至关重要地取决于离子和溶剂的性质以及金属本身的性质。这样的界面对建模提出了许多挑战,因为它们是量子化学与统计物理相遇的地方。在目前的评论中,

更新日期:2021-04-21
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