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Omni-functional simultaneous interfacial treatment for enhancing stability and outgassing suppression of lithium-ion batteries

Authors
Lee, YoubeanPark, ChanjooMin, KyoungminPark, Kwangjin
Issue Date
Jul-2024
Publisher
ELSEVIER
Keywords
Lithium-ion batteries; Ni-rich NCM; Acid solvent evaporation; LiNO3-derived coating; Gas evolution
Citation
JOURNAL OF ENERGY CHEMISTRY, v.94, pp 677 - 687
Pages
11
Journal Title
JOURNAL OF ENERGY CHEMISTRY
Volume
94
Start Page
677
End Page
687
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/91522
DOI
10.1016/j.jechem.2024.03.012
ISSN
2095-4956
Abstract
Ni-rich layered oxides in lithium -ion batteries have problems with gas generation and electrochemical performance reduction due to residual lithium's reaction on the surface with the electrolyte. To address this issue, in this study, the Acid solvent evaporation (ASE) method has been proposed as a potential method to remove residual lithium while promoting the formation of a new LiNO 3 -derived coating layer on the cathode surface. The reduction of residual lithium using the ASE method and the construction of a LiNO 3 -derived coating layer suppresses gas evolution caused by the side effects of the electrolyte, improves electrochemical performance, and improves thermal stability by facilitating the smooth movement of lithium ions. Furthermore, the structural stability and resistance change due to the LiNO 3 - derived coating layer effects is guaranteed through cycling and DCIR of the pouch cell. As a result, compared to Pristine, the capacity retention of coin cells increased by 8% after 100 cycles, and pouch cells increased by 25% after 160 cycles. In addition, after cycling the pouch cell, CO 2 gas has significantly reduced by about 30% compared to Pristine using gas chromatography. The ASE method effectively forms a robust LiNO 3 -derived coating layer on the cathode active material, which helps minimize electrolyte reactivity, suppress CO 2 emissions, enhance surface structure stability, improve thermal stability, and improve overall battery performance. (c) 2024 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.
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Park, Kwang Jin
Engineering (기계·스마트·산업공학부(기계공학전공))
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