电化学
电解质
锂(药物)
扩散
粒径
电极
粒子(生态学)
材料科学
锂离子电池
电池(电)
微晶
阴极
分析化学(期刊)
纳米技术
化学物理
化学
热力学
物理化学
物理
冶金
色谱法
地质学
内分泌学
功率(物理)
海洋学
医学
作者
Jinhong Min,Lindsay M. Gubow,Riley J. Hargrave,Jason B. Siegel,Yiyang Li
标识
DOI:10.26434/chemrxiv-2023-7vgfx
摘要
Polycrystalline Li(Ni,Mn,Co)O2 (NMC) secondary particles are the most common cathode materials for Li-ion batteries. During electrochemical (dis)charge, lithium is believed to diffuse through the bulk and enter (leave) the secondary particle at the surface. Based on this model, smaller particles would cycle faster due to shorter diffusion lengths and larger surface-area-to-volume ratios. In this work, we evaluate this widespread assumption by developing a new high-throughput single-particle electrochemistry platform using the multi-electrode array from neuroscience. By measuring the reaction and diffusion times for 21 individual particles in liquid electrolytes, we find no correlation between the particle size and either the reaction or diffusion times, which is in stark contrast to the prevailing lithium transport model. We propose that electrochemical reactions occur inside secondary particles, possibly due to electrolyte penetration into cracks. Our high-throughput, single-particle electrochemical platform further opens new frontiers for robust, statistical quantification of individual particles in electrochemical systems.
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