材料科学
多孔性
微观结构
电化学
介电谱
粒子(生态学)
电解质
扫描电子显微镜
电池(电)
复合材料
原位
化学工程
电极
化学
量子力学
有机化学
地质学
海洋学
物理化学
功率(物理)
物理
工程类
作者
François Cadiou,Tuan‐Tu Nguyen,Martin Bettge,Zeliang Su,Jonathan Ando,Vincent De Andrade,Dean J. Miller,Arnaud Demortière
标识
DOI:10.48550/arxiv.2208.00878
摘要
Microstructural evolution of NMC secondary particles during the battery operation drives the electrochemical performance and impacts the Li-ion battery lifetime. In this work, we develop an in situ methodology using the FIB/SEM instrument to cycle single secondary particles of NMC active materials while following the modifications of their 3D morphology. Two types of secondary particles, i.e. low and high gradient NMC, were studied alongside morphological investigations in both pristine state and different number of cycles. The quantification of initial inner porosity and cracking evolution upon electrochemical cycling reveals a clear divergence depending on the type of gradient particles. An unexpected enhancement of the discharge capacity is observed during the first cycles concurrently to the appearance of inner cracks. At the first stages, impedance spectroscopy shows a charge transfer resistance reduction that suggests a widening of the crack network connected to the surface, which leads to an increase of contact area between liquid electrolyte and NMC particle. 3D microstructure of individual secondary particles after in situ cycles were investigated using FIB/SEM and nano-XCT. The results suggest a strong impact of the initial porosity shape on the degradation rate.
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