Molecular dynamics for electrocatalysis: Mechanism explanation and performance prediction

Yue Wang , Haodong Shao , Chengxu Zhang , Feng Liu , Jianqiang Zhao , Sanyuan Zhu , Michael K.H. Leung , Jue Hu
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引用次数: 0

Abstract

Designing low-cost, high-performing electrocatalysts is key to green energy development, yet relying solely on the "synthesis-characterization" catalyst screening model is time-consuming and costly. There are two main applications for Molecular dynamics (MD) simulations in electrochemical reactions: explaining mechanisms and predicting performance, which play important roles in fabricating robust electrocatalysts. MD simulations of electrocatalysis include the adsorption and desorption of reactants, intermediates, and products in this review. The structural changes in active centers under various electric field states, the effects of alkali metal cations, common anions, and pH effects in the electrolyte on the electrocatalytic process are also discussed to reveal the reaction mechanism. Then the prediction of the catalysts performance in specific reaction using MD simulations are introduced. Finally, the optimization and challenges of MD techniques are discussed.

电催化的分子动力学:机理解释和性能预测
设计低成本、高性能的电催化剂是绿色能源发展的关键,但仅依靠“合成表征”催化剂筛选模型既耗时又昂贵。分子动力学(MD)模拟在电化学反应中有两个主要应用:解释机理和预测性能,这在制备坚固的电催化剂方面发挥着重要作用。在这篇综述中,电催化的MD模拟包括反应物、中间体和产物的吸附和解吸。还讨论了不同电场状态下活性中心的结构变化、碱金属阳离子、常见阴离子和电解质中pH值对电催化过程的影响,以揭示反应机理。然后介绍了利用分子动力学模拟预测催化剂在特定反应中的性能。最后,讨论了MD技术的优化和挑战。
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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CiteScore
7.90
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