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用于石墨中锂嵌入的复制交换分子动力学:一个老问题的新解决方案。

Replica exchange molecular dynamics for Li-intercalation in graphite: a new solution for an old problem.

作者信息

Park Heesoo, Wragg David S, Koposov Alexey Y

机构信息

Centre for Material Science and Nanotechnology, Department of Chemistry, University of Oslo P.O. Box 1033, Blindern Oslo 0371 Norway

Department of Battery Technology, Institute for Energy Technology (IFE) Instituttveien 18, Kjeller 2027 Norway.

出版信息

Chem Sci. 2024 Jan 16;15(8):2745-2754. doi: 10.1039/d3sc06107h. eCollection 2024 Feb 22.

Abstract

Li intercalation and graphite stacking have been extensively studied because of the importance of graphite in commercial Li-ion batteries. Despite this attention, there are still questions about the atomistic structures of the intermediate states that exist during lithiation, especially when phase dynamics cause a disordered Li distribution. The Li migration event (diffusion coefficient of 10 nm ns) makes it difficult to explore the various Li-intercalation configurations in conventional molecular dynamics (MD) simulations with an affordable simulation timescale. To overcome these limitations, we conducted a comprehensive study using replica-exchange molecular dynamics (REMD) in combination with the ReaxFF force field. This approach allowed us to study the behavior of Li-intercalated graphite from any starting arrangement of Li at any value of in LiC. Our focus was on analyzing the energetic favorability differences between the relaxed structures. We rationalized the trends in formation energy on the basis of observed structural features, identifying three main structural features that cooperatively control Li rearrangement in graphite: Li distribution, graphite stacking mode and gallery height (graphene layer spacing). We also observed a tendency for clustering of Li, which could lead to dynamic local structures that approximate the staging models used to explain intercalation into graphite.

摘要

由于石墨在商用锂离子电池中的重要性,锂嵌入和石墨堆叠已得到广泛研究。尽管受到了这种关注,但对于锂化过程中存在的中间态的原子结构仍存在疑问,尤其是当相动力学导致锂分布无序时。锂迁移事件(扩散系数为10 nm/ns)使得在常规分子动力学(MD)模拟中以可承受的模拟时间尺度探索各种锂嵌入构型变得困难。为了克服这些限制,我们结合ReaxFF力场,使用副本交换分子动力学(REMD)进行了全面研究。这种方法使我们能够从LiC中任何锂的起始排列开始,研究锂嵌入石墨的行为。我们的重点是分析弛豫结构之间的能量有利性差异。我们根据观察到的结构特征,对形成能的趋势进行了合理化分析,确定了协同控制石墨中锂重排的三个主要结构特征:锂分布、石墨堆叠模式和层间距(石墨烯层间距)。我们还观察到锂有聚集的趋势,这可能导致动态局部结构,类似于用于解释嵌入石墨的分级模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/587c/10882458/831e120cc815/d3sc06107h-f1.jpg

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