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Micromechanisms of Capacity Fade in Silicon Anode for Lithium-Ion Batteries

机译:淡入硅阳极微观结构的能力对锂离子电池

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Large volume change and associated stress generation is known to cause failure of the silicon thin film anode used for Lithium-ion batteries after a few cycles. Experimental observations suggest that plastic deformation of the underlying Cu substrate and degradation of the active/inactive interface are the primary reasons responsible for the capacity fade. The goal of the present study is to examine the interplay between these mechanisms using a computational mechanics approach. In the present study, a novel multi-physics finite element framework has been developed to simulate the lithiation and de-lithiation induced failure of amorphous Si (a-Si) thin film on Cu foil. The numerical framework is based on the finite deformation of the active silicon wherein diffusion of lithium occurs, plastic deformation of the Cu foil, and debonding of the active/inactive interface. The effect of substrate property, interfacial energy and kinetics of interface degradation has been examined.
机译:大的体积变化和相关的压力代会导致失败的硅薄膜用于锂阳极电池经过几个周期。观察结果表明,塑性变形底层铜衬底和退化是主要的活动/活动界面负责能力减弱的原因。本研究的目的是检查这些机制使用之间的相互作用计算力学的方法。研究中,小说multi-physics有限元框架已经开发的模拟lithiation和de-lithiation诱导失败非晶硅(硅)对铜铝箔薄膜。数值框架是基于有限的变形的活性硅中扩散的锂发生塑性变形铜铝箔,舒解活动/活动接口。底物性质,界面能和界面动力学退化检查。

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