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Cited 4 time in webofscience Cited 4 time in scopus
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Stabilizing the Solid Electrolyte Interface Using a Zero-Strain Feature Protective Layer for a High-Performance Silicon-Graphite Anode

Authors
Jayasubramaniyan, S.Lee, YoonkwangKim, JueunKim, SeokjinKim, DonghwiKo, MinseokReddy, N.S.Nam, Sang YongSung, Jaekyung
Issue Date
Jul-2024
Publisher
American Chemical Society
Citation
Energy & Fuels, v.38, no.18, pp 18026 - 18034
Pages
9
Indexed
SCIE
SCOPUS
Journal Title
Energy & Fuels
Volume
38
Number
18
Start Page
18026
End Page
18034
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/73731
DOI
10.1021/acs.energyfuels.4c01846
ISSN
0887-0624
1520-5029
Abstract
Commercial graphite-based Li-ion batteries almost reached their maximum energy density limits, and the need for high-energy batteries increased tremendously. Silicon (Si) has become a viable anode; however, its enormous volume expansion limits its application. In this regard, the silicon-graphite (Si-G) composite is considered a potential anode to boost the energy density of graphite and alleviate the limitations of silicon. However, the formation of an unstable solid electrolyte interface (SEI) layer impedes its use in practical applications. Hence, constructing a stable SEI layer is crucial to attaining stable and long-term cyclability for Si-G. In this study, we investigated the influence of the Li4Ti5O12 (LTO) protective coating on the Si-G composite anode toward the stable SEI layer formation. We found that the LTO coating on Si-G effectively suppresses the parasitic reaction of organic electrolytes with Si and facilitates stable SEI layer formation. In particular, the cross-sectional analysis of the LTO-Si-G electrode using transmission electron microscopy after cycling confirms the presence of stable and thin SEI. In addition, the electrode showed a higher Coulombic efficiency of 99.82%, a high specific capacity of 570.48 mAh g-1, and enhanced capacity retention of 97.7% after 75 cycles. Our findings highlight that constructing a stable SEI by encasing the Si-G surface with LTO is a promising way to enhance the cycling performance of high-energy Li-ion batteries with the Si-G composite anode. © 2024 American Chemical Society
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공학계열 > Dept.of Materials Engineering and Convergence Technology > Journal Articles

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공과대학 (나노신소재공학부금속재료공학전공)
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