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Sandwich-lithiation and longitudinal crack in amorphous silicon coated on carbon nanofibers

机译:碳纳米纤维包覆的非晶硅的三明治锂化和纵向裂纹

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摘要

Silicon-carbon nanofibers coaxial sponge, with strong mechanical integrity and improved electronic conductivity, is a promising anode structure to apply into commercial high-capacity lithium ion batteries. We characterized the electrochemical and mechanical behaviors of amorphous silicon-coated carbon nanofibers (a-Si/CNFs) with in situ transmission electron microscopy (TEM). It was found that lithiation of the a-Si coating layer occurred from the surface and the a-Si/CNF interface concurrently, and propagated toward the center of the a-Si layer. Such a process leads to a sandwiched Li _xSi/Si/Li _xSi structure, indicating fast Li transport through the a-Si/CNF interface. Nanocracks and sponge-like structures developed in the a-Si layer during the lithiation-delithiation cycles. Lithiation of the a-Si layer sealed in the hollow CNF was also observed, but at a much lower speed than the counterpart of the a-Si layer coated on the CNF surface. An analytical solution of the stress field was formulated based on the continuum theory of finite deformation, explaining the experimental observation of longitudinal crack formation and general mechanical degradation mechanism in a-Si/CNF electrode.
机译:硅碳纳米纤维同轴海绵具有很强的机械完整性和改善的电子导电性,是一种有前景的阳极结构,可应用于商业化的高容量锂离子电池。我们用原位透射电子显微镜(TEM)表征了非晶硅涂层碳纳米纤维(a-Si / CNFs)的电化学和机械行为。已经发现,a-Si涂层的锂化同时从表面和a-Si / CNF界面发生,并且传播到a-Si层的中心。这样的过程导致夹在中间的Li _xSi / Si / Li _xSi结构,表明Li通过a-Si / CNF界面快速传输。在锂化-脱锂循环期间,非晶硅层中形成了纳米裂纹和海绵状结构。还观察到密封在中空CNF中的a-Si层的锂化,但是其速度比涂覆在CNF表面上的a-Si层的对应物低得多。基于有限变形的连续理论,建立了应力场的解析解,解释了a-Si / CNF电极中纵向裂纹形成和一般机械降解机理的实验观察。

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