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(Invited) Understanding the Graphite Anode Electrode Failure Mode in Cycled Commercial Lithium-Ion Batteries

机译:(邀请)了解循环的商业锂离子电池中石墨阳极电极破坏模式

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The structure degradation of commercial Lithium-ion battery (LIB) graphite anodes was investigated and reported here. The first was to investigate the electrode degradation by examining the PVDF binder degradation after extended cycling. We concluded that the PVDF binder is extremely stable and has no structure degradation after 800 cycles. The graphite materials with different cycling numbers and charge rates was investigated by focused ion beam (FIB) and scanning electron microscopy (SEM). The cross-section image of graphite anode by FIB milling shows that cracks, resulted in the volume expansion of graphite electrode during long-term cycling, were formed in parallel with the current collector. The crack occurs in the bulk of graphite particles near the lithium insertion surface, which might derive from the stress induced during lithiation and de-lithiation cycles. Subsequently, crack takes place along grain boundaries of the polycrystalline graphite, but only in the direction parallel with the current collector. Furthermore, fast charge graphite electrodes are more prone to form cracks since the tensile strength of graphite is more likely to be surpassed at higher charge rates. Therefore, for LIBs long-term or high charge rate applications, the tensile strength of graphite anode should be taken into account.
机译:研究并在此报告了商业锂离子电池(Lib)石墨阳极的结构降解。首先是通过检查延长循环后的PVDF粘合剂降解来研究电极劣化。我们得出结论,PVDF粘合剂非常稳定,800次循环后没有结构降解。通过聚焦离子束(FIB)和扫描电子显微镜(SEM)研究具有不同循环数和电荷速率的石墨材料。通过FIB铣削的石墨阳极的横截面图像表明,在长期循环期间导致石墨电极的体积膨胀,与集电器平行形成裂缝。裂缝发生在锂插入表面附近的大部分石墨颗粒中,这可能导出在锂化和去锂锂循环期间引起的应力。随后,沿着多晶石墨的晶界发生裂缝,但仅在与集电器平行的方向上。此外,快速电荷石墨电极更容易形成裂缝,因为石墨的拉伸强度更可能以更高的电荷率超越。因此,对于LIBS长期或高电荷率应用,应考虑石墨阳极的拉伸强度。

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