4.7 Article

Sub-zero temperature electrolytes for lithium-sulfur batteries: Functional mechanisms, challenges and perspectives

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 443, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2022.136637

Keywords

Sub-zero temperature; Low-temperature challenges; Electrolyte design; Energy storage; Lithium-sulfur battery

Funding

  1. Key Research &Development projects of Zhejiang Province [2019C01072]
  2. National Natural Science Foundation of China [22002086, 51803116]
  3. Key Laboratory of Fuel Cell Technology of Guangdong Province
  4. Program of Special Appointment (Young Dongfang Scholar) of the Shanghai Education Committee [DQ20180003]

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This paper reviews the electrolytes of lithium-sulfur batteries (LSBs) and emphasizes the recent advances in electrolyte design strategies for improving the performance of LSBs at low temperatures. The challenges of liquid and solid electrolytes at low temperatures are analyzed, and research directions for overcoming these challenges are proposed.
The currently used lithium-ion batteries are facing two challenges of insufficient energy density for recharge mileage requirement of electric vehicles and low performance at sub-zero temperatures. Lithium-sulfur batteries (LSBs) with high theoretical energy density may be the next generation of lithium-based batteries. However, LSBs still have their challenges at low temperatures, including accumulation of lithium polysulfide, nucleation of lithium sulfide, lithium deposition, and formation of solid electrolyte interphase film, solvation degree and so on. Electrolytes of LSBs are partially responsible for these issues. To facilitate further research and development of LSBs particularly operated at sub-zero temperatures, this paper reviews the electrolytes of LSBs in terms of electrolyte materials, characterization, functional mechanisms, and performance optimization. The recent advances in electrolyte design strategies, including solvent optimization, lithium salt modification, additive introduction, and solid-state electrolytes of LSBs are emphasized. The challenges of both liquid and solid electrolytes at low temperatures are analyzed and the research directions for overcoming the challenges are also proposed in this paper for further research and development toward practical application.

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