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Nonequilibrium fast-lithiation of Li4Ti5O12 thin film anode for LIBs.

Authors :
Chen, Yue
Zhang, Shaohua
Ye, Jiefeng
Zheng, Xinyi
Zhang, Jian-Min
Mangayarkarasi, Nagarathinam
Niu, Yubiao
Lu, Hongyi
Zhao, Guiying
Tao, Jianming
Li, Jiaxin
Lin, Yingbin
Kolosov, Oleg V.
Huang, Zhigao
Source :
Communications Physics. 8/17/2024, Vol. 7 Issue 1, p1-11. 11p.
Publication Year :
2024

Abstract

Li4Ti5O12 (LTO) is known for its zero-strain characteristic in electrochemical applications, making it a suitable material for fast-charging applications. Here, we systematically studied the quasi-equilibrium and non-equilibrium lithium-ion transportation kinetics in LTO thin-film electrodes, across a range of scales from the crystal lattice to the microstructured electrodes. At the crystal lattice scale, during the non-equilibrium lithiation process, lithium ions are dispersedly embedded into the 16c position, resulting in more 8a → 16c migration compared with the quasi-equilibrium lithiation, and forming numerous fast lithium diffusion channels inside the LTO lattice. At the microstructural electrode scale, optical spectrum characterizations supported the "nano-filaments" lithiation model in polycrystalline LTO thin-film electrodes during the lithiation process. Our results reveal the patterns of lithium migration and distribution within the LTO thin film electrode under the non-equilibrium and quasi-equilibrium lithiation process, offering profound insights into the potential optimization strategies for enhancing the performance of fast-charging thin film batteries. Li4Ti5O12 (LTO) is an ideal battery material for fastcharging applications. The authors examine Li+ transport in LTO thin film electrodes, revealing that nonequilibrium processes result in unique Li+ occupation states that enhance Li+ diffusion. Findings suggests engineering Li+ occupations in LTO crystal lattice can improve battery performance. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
23993650
Volume :
7
Issue :
1
Database :
Academic Search Index
Journal :
Communications Physics
Publication Type :
Academic Journal
Accession number :
179087448
Full Text :
https://doi.org/10.1038/s42005-024-01775-7