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Revealing the Role of Poly(vinylidene fluoride) Binderin Si/Graphite Composite Anode for Li-Ion Batteries

机译:揭示聚偏二氟乙烯粘合剂的作用锂离子电池的Si /石墨复合阳极中的合成

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摘要

The conventional polyvinylidene fluoride (PVDF) binder works well with the graphite anode, but when combined with silicon in composites to increase the energy density of Li-ion batteries, it results in severe capacity fade. Herein, by using scanning electron microscopy and energy-dispersive X-ray spectroscopy analyses, we reveal that this failure stems from the loss of connectivity between the silicon (or its agglomerates), graphite, and PVDF binder because of the mechanical stresses experienced during battery cycling. More importantly, we reveal for the first time that the PVDF binder undergoes chemical decomposition during the cycling of not only the composite but also the Si-only or even graphite-only electrodes despite the excellent battery performance of the latter. Through X-ray photoemission electron microscopy and X-ray photoelectron spectroscopy techniques, LiF was identified as the predominant decomposition product. We show that the distribution of LiF in the electrodes due to the differences in the interactions between PVDF and either Si or graphite could correlatewith the performance of the battery. This study shows that the mostsuitable binder for the composite electrode is a polymer with a goodchemical interaction with both graphite and silicon.
机译:常规的聚偏二氟乙烯(PVDF)粘合剂可与石墨阳极一起很好地工作,但是当与硅复合使用以提高锂离子电池的能量密度时,则会导致严重的容量衰减。本文中,通过使用扫描电子显微镜和能量色散X射线光谱分析,我们发现这种失效是由于电池(电池组中经历的机械应力)导致的硅(或其团聚物),石墨和PVDF粘合剂之间的连接性损失所致。循环。更重要的是,我们首次揭示了PVDF粘合剂不仅在复合材料的循环过程中经历化学分解,而且在循环过程中,尽管硅电池具有出色的电池性能,但其仅含Si或什至仅含石墨的电极都经历了化学分解。通过X射线电子发射电子显微镜和X射线光电子能谱技术,可以确定LiF是主要的分解产物。我们表明,由于PVDF与Si或石墨之间相互作用的差异,LiF在电极中的分布可以相互关联与电池的性能有关。这项研究表明复合电极的合适粘合剂是具有良好性能的聚合物与石墨和硅的化学相互作用。

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