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Li-ion hopping conduction enabled by associative Li-salt in acetonitrile solutions

Title
Li-ion hopping conduction enabled by associative Li-salt in acetonitrile solutions
Author(s)
Koo, BonhyeopLee, HyejinPark, KisungHwang, SunwookLee, Hochun
Issued Date
2024-02
Citation
Bulletin of the Korean Chemical Society, v.45, no.2, pp.92 - 100
Type
Article
Author Keywords
anion-bridged structureassociative Li-saltLi-ion hopping conductionmonodentate solventsolvent-bridged structure
Keywords
LITHIUM-IONELECTROLYTE-SOLUTIONSDIELECTRIC-RELAXATIONSUPERCONCENTRATED ELECTROLYTESPROPYLENE CARBONATELIQUID ELECTROLYTESMETHYL ACETATEFT-RAMANSOLVATIONDYNAMICS
ISSN
0253-2964
Abstract
To date, ionic conduction in nonaqueous electrolytes has been explained through the vehicle-type migration mechanism. Yet, new research hints at another conduction mode: ion-hopping, seen in highly concentrated solutions with multi-coordinating solvents. Our research uncovers that Li-ion hopping conduction also occurs in monodentate acetonitrile (AN) electrolytes, enabled by a highly associative Li-salt. Using techniques like pulse-field gradient NMR, Raman spectroscopy, and dielectric relaxation spectroscopy, we examined AN solutions with lithium trifluoroacetate (LiTFA) and lithium bis(fluorosulfonyl)imide (LiFSI). Results showed that Li-ion diffusion in LiTFA-AN was faster due to an anion-bridge structure formed by the associative nature of LiTFA. In contrast, the LiFSI-AN solution demonstrated slower Li-ion movement. In practical applications, like LiFePO4 symmetric cells, 4 M LiTFA-AN outperformed 1 M LiTFA-AN in rate performance, despite its lower ionic conductivity. This challenges the belief that associative Li-salts are unsuitable for battery electrolytes and prompts reconsideration of other associative Li-salts. © 2023 Korean Chemical Society, Seoul & Wiley-VCH GmbH.
URI
http://hdl.handle.net/20.500.11750/47760
DOI
10.1002/bkcs.12802
Publisher
Wiley
Related Researcher
  • 이호춘 Lee, Hochun
  • Research Interests Lithium-ion batteries; Novel Materials for rechargeable batteries; Novel energy conversion;storage systems; Electrochemistry; 리튬이차전지; 이차전지용 신규 전극 및 전해액; 신규 에너지변환 및 저장 시스템; 전기화학
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Department of Energy Science and Engineering Electrochemistry Laboratory for Sustainable Energy(ELSE) 1. Journal Articles

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