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In Situ Raman Mapping of Si Island Electrodes and Stress Modeling as a Function of Lithiation and Size

材料科学 电极 压力(语言学) 复合材料 拉曼光谱 分层(地质) 光学 古生物学 哲学 语言学 化学 物理 俯冲 物理化学 生物 构造学
作者
Haotian Wang,Yueming Song,Victoria Castagna Ferrari,Nam Soo Kim,Sang Bok Lee,Paul Albertus,Gary W. Rubloff,David M. Stewart
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:15 (34): 40409-40418 被引量:7
标识
DOI:10.1021/acsami.3c06287
摘要

Si is known for cracking and delamination during electrochemical cycling of a battery due to the large volume change associated with Li insertion and extraction. However, it has been found experimentally that patterned Si island electrodes that are 200 nm thick and less than 7 μm wide can deform in a purely elastic manner. Inspired by this, we performed in situ Raman stress characterization of model poly-crystalline Si island electrodes using an electrochemical cell coupled with an immersion objective lens and designed for a short working distance. A 5 μm wide Si island electrode showed a parabolic stress profile during lithiation, while for a 15 μm Si island electrode, a stress plateau in the center of the electrode was observed. A continuum model with coupled electro-chemo-mechanical (ECM) physics was established to understand the stress measurement. A qualitative agreement was reached between modeling and experimental data, and the critical size effect could be explained by the Li diffusive flux as governed by competition between the Li concentration and hydrostatic stress gradients. Below the critical size, the stress gradient drives Li toward the edges, where the electrode volume is free to expand, while above the critical size, the stress plateau inhibits Li diffusion to the edge and forces destructive stress relief by cracking. This work represents a promising methodology for in situ characterization of ECM coupling in battery electrodes, with suggestions provided for further improvement.
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