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Department of Energy Science and Engineering
Biophysics and Soft Matter (BioSM) Lab
1. Journal Articles
Interfacial impacts of diluent-mediated anion conformational changes in locally concentrated ionic liquid electrolytes
Lim, Minhong
;
Chang, Hongjun
;
Kim, Gunyoung
;
Seo, Jiyeon
;
Kim, Beomjun
;
Choe, Seungho
;
Lee, Hochun
;
Moon, Janghyuk
;
Lee, Hongkyung
Department of Energy Science and Engineering
Biophysics and Soft Matter (BioSM) Lab
1. Journal Articles
Department of Energy Science and Engineering
Electrochemistry Laboratory for Sustainable Energy(ELSE)
1. Journal Articles
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Title
Interfacial impacts of diluent-mediated anion conformational changes in locally concentrated ionic liquid electrolytes
Issued Date
2025-06
Citation
Lim, Minhong. (2025-06). Interfacial impacts of diluent-mediated anion conformational changes in locally concentrated ionic liquid electrolytes. Energy Storage Materials, 79. doi: 10.1016/j.ensm.2025.104288
Type
Article
Author Keywords
Anion conformational change
;
Bidentate coordination
;
High voltage stability
;
Locally concentrated ionic liquid electrolytes
;
Solid-electrolyte interphase
Keywords
SOLID-ELECTROLYTE
;
METAL
;
INTERPHASE
;
ANODE
;
BATTERIES
;
ENERGY
ISSN
2405-8297
Abstract
Dilution methods employing weaker-solvating solvents as diluents have shown promise in reducing the viscosity of liquid electrolytes without disrupting the coordination between Li⁺ and anions. However, diluents alter the FSI− coordination conformation in locally concentrated ionic liquid electrolytes (LCILEs) by occupying the interstitial space between the Li+−FSI− complex and Pyr13+. The Li+−FSI− bond exhibits various energy states depending on the anion coordination conformation. By regulating the dilution extent, the HOMO level can be reduced, enabling higher voltage tolerance with fewer side reactions. Given that reinforcing the Li+−FSI− binding can contribute to reducing the HOMO level, TTE in-between Pyr13+ and FSI− possibly changes the anion conformation from bidentate to ambidentate coordination. Furthermore, moderate dilution promoting bidentate coordination facilitates the formation of a LiF-rich solid-electrolyte interphase (SEI). Herein, we present an optimally diluted CILE (LCILE-T1) that demonstrates superior cycle stability in a pouch-type full cell operating at 4.7 V, achieving over 240 cycles. © 2025
URI
https://scholar.dgist.ac.kr/handle/20.500.11750/58553
DOI
10.1016/j.ensm.2025.104288
Publisher
Elsevier
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