阳极
硅
电极
材料科学
电化学
化学工程
降级(电信)
自行车
扩散
多孔硅
纳米技术
体积膨胀
光电子学
容量损失
肿胀 的
作者
A.R. de L. Musgrove,Ankit Verma,Marco‐Tulio F. Rodrigues,Charles McDaniel,Daniel P. Abraham,Steven Lam,Andrew M. Colclasure,Avtar Singh,Beth L. Armstrong,Gabriel M. Veith
标识
DOI:10.1002/admt.202502088
摘要
ABSTRACT The Solid‐state Prealkylation of Electrode ARchitectures (SPEAR) is different than traditional electrochemical prealkylation processes. Through SPEAR, alkylation is driven by solid‐state diffusion without the simultaneous SEI formation concomitant with polarization. We investigate the prelithiation of 80 wt. % Si‐based anodes to varying amounts (up to Li 1.38 Si) to understand the trade‐off between improved Li capacity and expansion‐induced stress. Through dilatometry, we found that solid‐state lithiation led to filling of the electrode pores through silicon expansion. This swelling changed the SEI formation process and accessibility of the silicon compared to an electrochemically lithiated electrode. Indeed, optimal prelithiation to Li 0.82 Si increases the initial C/3 cycling capacity post‐SEI formation up to 43%, consistent with deeper Si activation through the electrode bulk. Prelithiation and cycling cells prelithiated beyond Li 0.82 Si results in a state of charge (SOC) close to 100% which facilitates parasitic degradation mechanisms and volume expansion of the Si electrode. The results demonstrate a pathway to modify silicon activation/SEI formation to enable high‐energy electrodes.
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