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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Uneven Film Formation across Depth of Porous Graphite Electrodes in Cycled Commercial Li-Ion Batteries
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Uneven Film Formation across Depth of Porous Graphite Electrodes in Cycled Commercial Li-Ion Batteries

机译:循环商用锂离子电池中多孔石墨电极深度上不均匀的膜形成

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摘要

A critical aging mechanism in lithium-ion batteries is the decomposition of the electrolyte at the negative electrode forming a solid electrolyte interphase (SEI) layer that increases impedance and consumes cyclable lithium. In contrast to the typical nanometer SEI layer generally discussed, this paper reports on the formation of a micrometer thick film on top of and within the upper part of a porous graphite electrode in a deep-cycled commercial cylindrical LiFePO4/graphite cell. Morphological, chemical, and electrochemical characterizations were performed by means of cross-sectional electron microscopy in combination with energy dispersive X-ray spectroscopy and focused ion-beam milling, time-of-flight secondary ion mass spectrometry, and electrochemical impedance spectroscopy (EIS) to evaluate the properties and impact of the uneven film. It is shown that the film is enriched in PO and carbonate species but is otherwise similar in composition to the thin SEI formed on a calendar-aged electrode and clogs the pores in the electrode closest to the separator. Performance evaluation by physics-based EIS modeling supports a local porosity decrease, impeding the effective electrolyte transport in the electrode. The local variation of electrode properties implies that current distribution in the porous electrode under these cycling conditions causes inefficient material utilization and sustained uneven electrode degradation.
机译:锂离子电池中的关键老化机制是负极处的电解质分解,形成固态电解质中间相(SEI)层,从而增加阻抗并消耗可循环的锂。与通常讨论的典型纳米SEI层相反,本文报道了在深循环商业化圆柱形LiFePO4 /石墨电池中,在多孔石墨电极顶部和上部形成微米厚的膜的情况。形态,化学和电化学表征是通过截面电子显微镜结合能量色散X射线光谱和聚焦离子束研磨,飞行时间二次离子质谱和电化学阻抗光谱(EIS)进行的评估不均匀薄膜的性能和影响。已表明该膜富含PO和碳酸盐物质,但在组成上与形成在压延时效电极上的薄SEI相似,并且堵塞了最靠近隔膜的电极孔。通过基于物理的EIS建模进行的性能评估可支持局部孔隙率的降低,从而阻碍了电解质在电极中的有效传输。电极性能的局部变化表明,在这些循环条件下,多孔电极中的电流分布会导致材料利用效率低下以及持续的电极不均匀劣化。

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