Tracking the Oxidation of Silicon Anodes Using Cryo-EELS upon Battery Cycling

阳极 材料科学 钝化 电解质 电池(电) 锂离子电池 衰退 粒子(生态学) 纳米技术 化学工程 锂(药物) 自行车 电极 图层(电子) 化学 光电子学 电气工程 工程类 内分泌学 物理化学 功率(物理) 考古 地质学 频道(广播) 物理 海洋学 历史 医学 量子力学
作者
Joseph Quinn,Bingbin Wu,Yaobin Xu,Mark Engelhard,Jie Xiao,Chongmin Wang
出处
期刊:ACS Nano [American Chemical Society]
卷期号:16 (12): 21063-21070 被引量:23
标识
DOI:10.1021/acsnano.2c08777
摘要

Silicon is a high-capacity material for the anode of a rechargeable lithium-ion battery. One of the fundamental challenges for using Si in anodes is capacity fading, which has been revealed to be partially associated with the interfacial instability between the Si and liquid electrolyte due to the large volume swing of Si upon charging and discharging. Smart nanoscale design concepts, either presynthesized or formed in situ, have led to the mitigation of the detrimental factors associated with the volume swing of Si. However, it has never been clear how the chemical state of Si evolves and contributes to the capacity fading upon battery cycling. Here, we use cryo-electron energy loss spectroscopy to directly monitor, at a subnanometer scale, the chemical evolution of Si upon battery cycling. We discover that during the cycling process Si particles are progressively oxidized to form SiO2, which is initiated from the particle surface and gradually penetrates toward the interior of the particle, directly contributing to the capacity fading. Possible mechanisms of Si oxidation are postulated. We further show how the cycling stability can be improved by an electrolyte additive to form an effective passivation layer, representatively, even a small concentration of fluoroethylene carbonate causes the formation of an LiF layer on the Si nanoparticle surface that prevents Si oxidation and improves cycling stability. The present work unveils Si oxidation as a previously unrecognized factor that contributes to capacity fading, therefore providing insight into the design of anodes with Si-based materials.
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