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Multiscale Modeling of Electro-Chemo-Mechanical Degradation in Si/C Core-Shell Anode for the Lithium-Ion Battery of High Energy Density

机译:高能密度锂离子电池Si / C芯壳阳极电气化疗降解的多尺度建模

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摘要

The capacity fade in lithium-ion battery (LIB) of high energy density using Si/C core-shell particle anode is one of the major barriers blocking its wide application. However, the underlying mechanism of electro-chemo-mechanical degradation remains unclear. In this study, we propose and validate a multiscale model (electrode level and particle level), considering electrochemical-mechanical coupling and cohesive zone method at the particle level. The effects of charging rate, core/shell ratio, and mechanical properties of the shell on the separation and capacity fade are discussed. We discover that larger charging rate, smaller core/shell ratio, and stiffer shell can mitigate the core-shell separation gap, leading to higher capacity retention. Results shed light on the degradation mechanism of Si/C core-shell anode and provide design guidance for Si/C anode materials in minimizing the capacity fade and safe battery charging/discharging strategy.
机译:采用Si/C核壳粒子阳极的高能量密度锂离子电池的容量衰减是阻碍其广泛应用的主要障碍之一。然而,电化学机械降解的潜在机制尚不清楚。在本研究中,我们提出并验证了一个多尺度模型(电极水平和颗粒水平),考虑了颗粒水平上的电化学-机械耦合和内聚区方法。讨论了装料速率、核壳比和壳的力学性能对分离和容量衰减的影响。我们发现,更大的充电速率、更小的核壳比和更硬的壳可以缓解核壳分离间隙,导致更高的容量保持率。研究结果揭示了Si/C核壳阳极的降解机理,为Si/C阳极材料的设计提供了指导,以减少容量衰减和电池的安全充放电策略。

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