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A theory for coupled lithium insertion and viscoplastic flow in amorphous anode materials for Li-ion batteries

机译:锂离子电池无定形阳极材料中偶锂插入和粘塑流的理论

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摘要

Amorphous lithium metal alloys (LiM, with M=Si, Ge, Sn, ...) are attractive anode materials for lithium-ion batteries owing to their high energy-storage capacity and safety characteristics. However, repeated insertion of lithium often leads to chemo-mechanical degradation of the alloy, which can severely reduce the battery capacity and cycle life. Better understanding of the chemo-mechanical response of lithium alloys is needed to guide the design of damage-resistant anode microstructures. In this work, we propose a constitutive theory that couples large, viscoplastic deformations to the insertion and extraction of lithium in amorphous electrode materials. The theory relies on the concept of Shear Transformation Zone as carrier of plastic flow in the amorphous material, and accounts for microstructural evolution via an internal "free volume"variable. The model is used to gain insight into several features of the plasticity of amorphous alloys during lithiation, including rate-dependency, pressure-dependency, and structural evolution. Model predictions are also compared to experimental data for amorphous silicon.
机译:非晶锂金属合金(LIM,带M = Si,Ge,Sn,...)由于其高储能能力和安全性,是锂离子电池的吸引力阳极材料。然而,反复插入锂通常导致合金的化学机械降解,这可能会严重降低电池容量和循环寿命。需要更好地理解锂合金的化学机械响应,以引导抗损害阳极微结构的设计。在这项工作中,我们提出了一个组成型理论,即对无定形电极材料的插入和提取锂的插入和提取锂的构成理论。该理论依赖于剪切变换区的概念作为无定形材料中塑料流动的载体,并通过内部“自由体积”变量来占微观结构演变。该模型用于在锂化期间进入近几种特征的近几种特征,包括率依赖性,压力依赖性和结构演化。与非晶硅的实验数据相比,模型预测也是与非晶硅的实验数据进行比较。

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