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Mesoscale Origin of the Enhanced Cycling-Stability of the Si-Conductive Polymer Anode for Li-ion Batteries

机译:锂离子电池硅导电聚合物阳极增强循环稳定性的中尺度起源

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摘要

Electrode used in lithium-ion battery is invariably a composite of multifunctional components. The performance of the electrode is controlled by the interactive function of all components at mesoscale. Fundamental understanding of mesoscale phenomenon sets the basis for innovative designing of new materials. Here we report the achievement and origin of a significant performance enhancement of electrode for lithium ion batteries based on Si nanoparticles wrapped with conductive polymer. This new material is in marked contrast with conventional material, which exhibit fast capacity fade. In-situ TEM unveils that the enhanced cycling stability of the conductive polymer-Si composite is associated with mesoscale concordant function of Si nanoparticles and the conductive polymer. Reversible accommodation of the volume changes of Si by the conductive polymer allows good electrical contact between all the particles during the cycling process. In contrast, the failure of the conventional Si-electrode is probed to be the inadequate electrical contact.
机译:锂离子电池中使用的电极始终是多功能组件的复合材料。电极的性能由中尺度上所有组件的交互功能控制。对中尺度现象的基本理解为新材料的创新设计奠定了基础。在这里,我们报告了基于包裹有导电聚合物的Si纳米粒子的锂离子电池电极性能显着提高的成就和成因。这种新材料与常规材料形成鲜明的对比,后者显示出快速的容量衰减。原位TEM揭示了导电聚合物-Si复合材料增强的循环稳定性与Si纳米颗粒和导电聚合物的中尺度一致功能有关。导电聚合物可逆地容纳Si的体积变化可在循环过程中在所有颗粒之间实现良好的电接触。相反,传统的硅电极的故障被认为是电接触不足。

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