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The Impact of Initial SEI Formation Conditions on Strain-Induced Capacity Losses in Silicon Electrodes

机译:初始SEI形成条件对硅电极中应变诱导的容量损失的影响

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The solid electrolyte interphase (SEI) that passivates silicon surfaces in Li ion batteries is subjected to extremely large mechanical strains during electrochemical cycling. The resulting degradation of these SEI films is a critical problem that limits the cycle life of silicon-based electrodes. With the complex multiphase microstructure in conventional porous electrodes, it is not possible to directly measure the impact of these strains on SEI formation and capacity loss. To overcome this limitation a new in situ method is presented for applying controlled mechanical strains to SEI during electrochemical cycling. This approach uses patterned silicon films with different sized islands that act as model electrode particles. During lithiation/delithiation, the lateral expansion/contraction of the island edges applies in plane strains to the SEI. Detailed analysis of the island size effect then provides quantitative measurements of the impact of strain on the excess capacity losses that occur in different potential ranges. One key finding is that the applied strains lead to large capacity losses during lithiation only (during all cycles). Also, employing fast and slow SEI formation (first cycle) leads to large differences in the strain-induced losses that occur during subsequent cycling.
机译:钝化锂离子电池中硅表面的固态电解质相(SEI)在电化学循环过程中会承受极大的机械应变。这些SEI膜的最终降解是一个关键问题,它限制了硅基电极的循环寿命。由于常规多孔电极中复杂的多相微观结构,不可能直接测量这些应变对SEI形成和容量损失的影响。为了克服该限制,提出了一种新的原位方法,该方法用于在电化学循环期间将受控的机械应变施加到SEI。该方法使用具有不同大小岛的图案化硅膜,这些岛充当模型电极粒子。在锂化/去锂化过程中,岛边缘的横向膨胀/收缩在平面应变中作用于SEI。然后,对孤岛尺寸效应的详细分析提供了应变对不同电势范围内发生的多余容量损失的影响的定量测量。一个关键发现是,所施加的应变仅在锂化期间(在所有循环期间)会导致较大的容量损失。同样,采用快速和缓慢的SEI形成(第一个循环)会导致在随后的循环过程中发生的应变引起的损耗差异很大。

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