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首页> 外文期刊>The Journal of Chemical Physics >Lithium-electrolyte solvation and reaction in the electrolyte of a lithium ion battery: A ReaxFF reactive force field study
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Lithium-electrolyte solvation and reaction in the electrolyte of a lithium ion battery: A ReaxFF reactive force field study

机译:锂离子电池电解质中的锂电解质溶剂化和反应:Reaxff反应力场研究

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摘要

In the electrode/electrolyte interface of a typical lithium-ion battery, a solid electrolyte interphase layer is formed as a result of electrolyte decomposition during the initial charge/discharge cycles. Electron leakage from the anode to the electrolyte reduces the Li+-ion and makes it more reactive, resulting in decomposition of the organic electrolyte. To study the Li-electrolyte solvation, solvent exchange, and subsequent solvent decomposition reactions at the anode/electrolyte interface, we have extended the existing ReaxFF reactive force field parameter sets to organic electrolyte species, such as ethylene carbonate, ethyl methyl carbonate, vinylene carbonate, and LiPF6 salt. Density Functional Theory (DFT) data describing Li-associated initiation reactions for the organic electrolytes and binding energies of Li-electrolyte solvation structures were generated and added to the existing ReaxFF training data, and subsequently, we trained the ReaxFF parameters with the aim of finding the optimal reproduction of the DFT data. In order to discern the characteristics of the Li neutral and cation, we have introduced a second Li parameter set to describe the Li+-ion. ReaxFF is trained for Li-neutral and Li+-cation to have similar solvation energies, but unlike the neutral Li, Li+ will not induce reactivity in the organic electrolyte. Solvent decomposition reactions are presumed to happen once Li+-ions are reduced to Li-atoms, which can be simulated using a Monte Carlo type atom modification within ReaxFF. This newly developed force field is capable of distinguishing between a Li-atom and a Li+-ion properly. Moreover, it is found that the solvent decomposition reaction barrier is a function of the number of ethylene carbonate molecules solvating the Li-atom.
机译:在典型的锂离子电池的电极/电解质界面中,在初始充电/放电循环期间作为电解质分解的结果形成固体电解质间层。电子从阳极到电解质的电子泄漏减少了Li + --ion并使其更加反应,导致有机电解质的分解。为了研究Li-电解质溶剂,溶剂交换和随后的阳极/电解质界面的溶剂分解反应,我们已经将现有的Reaxff反应力场参数集扩展到有机电解质物种,例如碳酸亚乙基碳酸亚乙基甲基碳酸亚乙基碳酸亚乙酯和lipf6盐。在现有的Reaxff培训数据中产生了描述Li相关引发反应的Li相关发起反应的密度函数理论(DFT)数据,并将Reaxff参数培训,以验证的目的DFT数据的最佳再现。为了辨别Li中性和阳离子的特征,我们引入了第二个Li参数集来描述Li + --ion。 Reaxff培养为Li-中性和Li + -Clation,以具有类似的溶剂化能量,但与中性Li不同,Li +不会诱导有机电解质中的反应性。一旦Li +离子减少到Li-Atoms,就会推测溶剂分解反应,可以使用Reaxff内的蒙特卡罗型原子修饰来模拟。这种新发达的力场能够区分Li-Atom和Li + -Ion。此外,发现溶剂分解反应屏障是溶解Li-Atom的碳酸亚乙酯分子数的函数。

著录项

  • 来源
    《The Journal of Chemical Physics》 |2020年第18期|共14页
  • 作者单位

    Idaho Natl Lab Dept Mat Sci &

    Engn Energy &

    Environm Sci &

    Technol Directorate Idaho Falls ID 83402 USA;

    Idaho Natl Lab Dept Mat Sci &

    Engn Energy &

    Environm Sci &

    Technol Directorate Idaho Falls ID 83402 USA;

    Idaho Natl Lab Dept Energy Storage &

    Adv Transportat Energy &

    Environm Sci &

    Technol Directorate Idaho Falls ID 83402 USA;

    Idaho Natl Lab Dept Energy Storage &

    Adv Transportat Energy &

    Environm Sci &

    Technol Directorate Idaho Falls ID 83402 USA;

    Idaho Natl Lab Dept Energy Storage &

    Adv Transportat Energy &

    Environm Sci &

    Technol Directorate Idaho Falls ID 83402 USA;

    Penn State Univ Dept Mech Engn University Pk PA 16802 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
  • 关键词

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