Weakly Solvating Solution Enables Chemical Prelithiation of Graphite-SiOxAnodes for High-Energy Li-Ion Batteries

Authors
Choi, JinkwanJeong, Hyang sooJang, JuyoungJeon, A ReKang, InyeongKwon, MinhyungHong, Ji hyunLee, Min ah
Issue Date
2021-06
Publisher
American Chemical Society
Citation
Journal of the American Chemical Society, v.143, no.24, pp.9169 - 9176
Abstract
Although often overlooked in anode research, the anode's initial Coulombic efficiency (ICE) is a crucial factor dictating the energy density of a practical Li-ion battery. For next-generation anodes, a blend of graphite and Si/SiOx represents the most practical way to balance capacity and cycle life, but its low ICE limits its commercial viability. Here, we develop a chemical prelithiation method to maximize the ICE of the blend anodes using a reductive Li-arene complex solution of regulated solvation power, which enables a full cell to exhibit a near-ideal energy density. To prevent structural degradation of the blend during prelithiation, we investigate a solvation rule to direct the Li+ intercalation mechanism. Combined spectroscopy and density functional theory calculations reveal that in weakly solvating solutions, where the Li+-anion interaction is enhanced, free solvated-ion formation is inhibited during Li+ desolvation, thereby mitigating solvated-ion intercalation into graphite and allowing stable prelithiation of the blend. Given the ideal ICE of the prelithiated blend anode, a full cell exhibits an energy density of 506 Wh kg-1 (98.6% of the ideal value), with a capacity retention after 250 cycles of 87.3%. This work highlights the promise of adopting chemical prelithiation for high-capacity anodes to achieve practical high-energy batteries. ? 2021 American Chemical Society. All rights reserved.
ISSN
0002-7863
URI
https://pubs.kist.re.kr/handle/201004/116955
DOI
10.1021/jacs.1c03648
Appears in Collections:
KIST Article > 2021
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