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정성균

Jung, Sung-Kyun
Energy Materials Research Lab.
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Charge-clustering induced fast ion conduction in 2LiX-GaF3: A strategy for electrolyte design

Author(s)
Patel, Sawankumar V.Lacivita, ValentinaLiu, HaoyuTruong, EricaJin, YongkangWang, EricMiara, LincolnKim, RyoungheeGwon, HyeokjoZhang, RongfuHung, IvanGan, ZhehongJung, Sung-KyunHu, Yan-Yan
Issued Date
2023-11
DOI
10.1126/sciadv.adj9930
URI
https://scholarworks.unist.ac.kr/handle/201301/67334
Citation
SCIENCE ADVANCES, v.9, no.47, pp.eadj9930
Abstract
2LiX-GaF3 (X = Cl, Br, I) electrolytes offer favorable features for solid-state batteries: mechanical pliability and high conductivities. However, understanding the origin of fast ion transport in 2LiX-GaF3 has been challenging. The ionic conductivity order of 2LiCl-GaF3 (3.20 mS/cm) > 2LiBr-GaF3 (0.84 mS/cm) > 2LiI-GaF3 (0.03 mS/cm) contradicts binary LiCl (10−12 S/cm) < LiBr (10−10 S/cm) < LiI (10−7 S/cm). Using multinuclear 7Li, 71Ga, 19F solid-state nuclear magnetic resonance and density functional theory simulations, we found that Ga(F,X)n polyanions boost Li+-ion transport by weakening Li+-X− interactions via charge clustering. In 2LiBr-GaF3 and 2LiI-GaF3, Ga-X coordination is reduced with decreased F participation, compared to 2LiCl-GaF3. These insights will inform electrolyte design based on charge clustering, applicable to various ion conductors. This strategy could prove effective for producing highly conductive multivalent cation conductors such as Ca2+ and Mg2+, as charge clustering of carboxylates in proteins is found to decrease their binding to Ca2+ and Mg2+.
Publisher
American Association for the Advancement of Science
ISSN
2375-2548
Keyword
TEMPERATURE-DEPENDENCEGA-71 NMRRELAXATIONTRANSPORTDYNAMICSCRYSTALSALTSMAS

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