Concentrated Electrolytes Widen the Operating Temperature Range of Lithium‐Ion Batteries
Концентрированные электролиты расширяют диапазон рабочих температур литий-ионных аккумуляторов
2021-07-23
SCID: 54.1/r938vzhv
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LiN(SO2F)2/dimethyl carbonateconcentrated electrolyteslithium-ion batteriespassivation interphasewide-temperature operation
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Abstract (AI)
Abstract The operating temperatures of commercial lithium‐ion batteries (LIBs) are generally restricted to a narrow range of −20 to 55 °C because the electrolyte is composed of highly volatile and flammable organic solvents and thermally unstable salts. Herein, the use of concentrated electrolytes is proposed to widen the operating temperature to −20 to 100 °C. It is demonstrated that a 4.0 mol L −1 LiN(SO 2 F) 2 /dimethyl carbonate electrolyte enables the stable charge–discharge cycling of a graphite anode and a high‐capacity LiNi 0.6 Co 0.2 Mn 0.2 O 2 cathode and the corresponding full cell in a wide temperature range from −20 to 100 °C owing to the highly thermal stable solvation structure of the concentrated electrolyte together with the robust and Li + ‐conductive passivation interphase it offered that alleviate various challenges at high temperatures. This work demonstrates the potential for the development of safe LIBs without the need for bulky and heavy thermal management systems, thus significantly increasing the overall energy density.
Key Findings
1
A 4.0 mol L−1 LiN(SO2F)2/dimethyl carbonate electrolyte enables stable cycling of graphite, LiNi0.6Co0.2Mn0.2O2, and their full cell across −20 to 100 °C.
2
A concentrated electrolyte strategy is proposed to extend the lithium-ion battery operating range to −20 to 100 °C.
3
Commercial lithium-ion battery operation is typically limited to −20 to 55 °C by volatile, flammable solvents and thermally unstable electrolyte salts.
4
The approach could enable safer lithium-ion batteries with reduced reliance on bulky thermal-management systems and increased overall energy density.
5
The electrolyte’s thermally stable solvation structure and robust, Li+-conductive passivation interphase mitigate high-temperature degradation challenges.
Research Object
lithium-ion batteries using a 4.0 mol L−1 LiN(SO2F)2/dimethyl carbonate concentrated electrolyte, with graphite anodes and LiNi0.6Co0.2Mn0.2O2 cathodes
Research Subject
stable charge–discharge cycling and the mechanisms enabling a widened operating-temperature range from −20 to 100 °C, including thermal-stable solvation and protective Li+-conductive passivation interphases
Publication Details
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2021-07-23
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