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Title
Diluent-mediated interfacial reactions in localized-high-concentration electrolytes for fast-charging lithium-ion batteries
Issued Date
2024-07
Citation
Park, Seungsoo. (2024-07). Diluent-mediated interfacial reactions in localized-high-concentration electrolytes for fast-charging lithium-ion batteries. Journal of Materials Chemistry A, 12(27), 16517–16527. doi: 10.1039/d4ta02103g
Type
Article
Keywords
LIQUID ELECTROLYTESLIADDITIVESCELLS
ISSN
2050-7488
Abstract
Reframing ionic transport and interface chemistry through electrolyte renovation is essential to promote the fast charging of Li-ion batteries, even under extreme conditions. Despite the formation of a less resistive interface using high-concentration electrolytes (HCEs), their inevitably high viscosity compromises their practical use. This work aims to explore the most suitable hydrofluoroether diluents for localized-high-concentration electrolytes (LHCEs). Contrary to the consensus on their negligible intervention in the Li+ solvation sheath, experimental evidence, and simulation studies have revealed that diluents can partially penetrate solvation and enable intermolecular interactions with solvents and additives. While the extent of physical intervention is similar, the intermolecular binding becomes greater when using longer-chain diluents with increased -CF2- moieties, hindering the desired interfacial reactions. By strategically selecting smaller diluents with fewer -CF2- units, low-viscosity LHCEs can attain the long stable cycling of Li-ion cells at a 10 minute charging rate (∼18 mA cm−2) over 500 cycles, and facilitate reliable performance under demanding conditions, such as thick electrodes (∼5 mAh cm−2) and low temperatures (−20 °C). © 2024 The Royal Society of Chemistry.
URI
http://hdl.handle.net/20.500.11750/57157
DOI
10.1039/d4ta02103g
Publisher
Royal Society of Chemistry
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Lee, Hochun이호춘

Department of Energy Science and Engineering

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