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ID 66997
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Sudoh, Taku Taku Sudoh Department of Chemistry and Life Science, Yokohama National University
Ikeda, Shuhei Department of Materials Chemistry, Nagoya University
Shigenobu, Keisuke Department of Chemistry and Life Science, Yokohama National University
Tsuzuki, Seiji Advanced Chemical Energy Research Centre (ACERC), Institute of Advanced Sciences, Yokohama National University
Dokko, Kaoru Department of Chemistry and Life Science, Yokohama National University
Watanabe, Masayoshi Advanced Chemical Energy Research Centre (ACERC), Institute of Advanced Sciences, Yokohama National University
Shinoda, Wataru Research Institute for Interdisciplinary Science and Department of Chemistry, Okayama University
Ueno, Kazuhide Department of Chemistry and Life Science, Yokohama National University
Abstract
Localized high-concentration electrolytes (LHCEs), which are mixtures of highly concentrated electrolytes (HCEs) and non-coordinating diluents, have attracted significant interest as promising liquid electrolytes for next-generation Li secondary batteries, owing to their various beneficial properties both in the bulk and at the electrode/electrolyte interface. We previously reported that the large Li+-ion transference number in sulfolane (SL)-based HCEs, attributed to the unique exchange/hopping-like Li+-ion conduction, decreased upon dilution with the non-coordinating hydrofluoroether (HFE) despite the retention of the local Li+-ion coordination structure. Therefore, in this study, we investigated the effects of HFE dilution on the Li+ transference number and the solution structure of SL-based LHCEs via the analysis of dynamic ion correlations and molecular dynamics simulations. The addition of HFE caused nano-segregation in the SL-based LHCEs to afford polar and nonpolar domains and fragmentation of the polar ion-conducting pathway into smaller clusters with increasing HFE content. Analysis of the dynamic ion correlations revealed that the anti-correlated Li+–Li+ motions were more pronounced upon HFE addition, suggesting that the Li+ exchange/hopping conduction is obstructed by the non-ion-conducting HFE-rich domains. Thus, the HFE addition affects the entire solution structure and ion transport without significantly affecting the local Li+-ion coordination structure. Further studies on ion transport in LHCEs would help obtain a design principle for liquid electrolytes with high ionic conductivity and large Li+-ion transference numbers.
Published Date
2023-06-20
Publication Title
The Journal of Physical Chemistry C
Volume
volume127
Issue
issue25
Publisher
American Chemical Society (ACS)
Start Page
12295
End Page
12303
ISSN
1932-7447
NCID
AA1217589X
Content Type
Journal Article
language
English
OAI-PMH Set
岡山大学
Copyright Holders
© 2023 The Authors.
File Version
publisher
DOI
Web of Science KeyUT
Related Url
isVersionOf https://doi.org/10.1021/acs.jpcc.3c02112
License
https://creativecommons.org/licenses/by-nc-nd/4.0/
Citation
J. Phys. Chem. C 2023, 127, 25, 12295–12303
Funder Name
Japan Society for the Promotion of Science
Japan Science and Technology Agency
New Energy and Industrial Technology Development Organization (NEDO)
助成番号
20H02837
22K19082
19H05812
22H00340
JPMJAL1301
JPNP20004