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首页> 外文期刊>Metals and Materials International >Structural Changes During Lithiation and Delithiation of Si Anodes in Li-Ion Batteries: A Large Scale Molecular Dynamics Study
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Structural Changes During Lithiation and Delithiation of Si Anodes in Li-Ion Batteries: A Large Scale Molecular Dynamics Study

机译:锂电池中硅阳极锂化和脱锂过程中的结构变化:大规模分子动力学研究

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摘要

Drastic volume change during lithiation and delithiation presents the biggest challenge to the realization of Si anodes in commercial Li-ion batteries. In particular, the anisotropic volume expansion is thought to be the most important feature for electrochemical reactions of Si anodes, since it can lend inspiration in designing advanced battery anodes. In the present study, the initial stage of lithiation and delithiation processes of Si anodes has been investigated using a large scale molecular dynamics simulation based on a recently developed 2NN MEAM interatomic potential for the Li-Si system. The volume expansion during lithiation and pulverization during delithiation is correctly reproduced by the simulation. The volume expansion for a given Li concentration is found to be independent of the crystallographic orientation while the crystal-to-amorphous transition is highly dependent on the crystallographic orientation. The simulation shows that the crystal-to-amorphous transition starts at lower Li concentration along the < 110 > direction than other directions, which explains the important anisotropic volume expansion in Si wire anodes. The suitability of large scale atomistic simulations for understanding a wider range of atomic level structural processes and designing nanostructures for high capacity Si anodes is discussed.
机译:锂化和脱锂过程中体积的急剧变化为实现商用锂离子电池中的硅阳极带来了最大挑战。特别地,各向异性体积膨胀被认为是硅阳极电化学反应的最重要特征,因为它可以为设计先进的电池阳极提供灵感。在本研究中,已使用大规模分子动力学模拟研究了锂阳极的锂化和脱锂过程的初始阶段,该模拟基于最近开发的用于Li-Si系统的2NN MEAM原子间势。通过模拟正确地再现了锂化期间的体积膨胀和脱锂期间的粉碎。对于给定的Li浓度,发现体积膨胀与晶体学取向无关,而晶体到非晶态的转变高度依赖于晶体学取向。模拟表明,晶体向非晶态的转变开始于沿<110>方向的锂浓度低于其他方向的Li浓度,这说明了硅线阳极中重要的各向异性体积膨胀。讨论了大规模原子模拟对于理解更广泛的原子级结构过程和设计高容量Si阳极纳米结构的适用性。

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