4.8 Article

Organic liquid electrolytes in Li-S batteries: actualities and perspectives

Journal

ENERGY STORAGE MATERIALS
Volume 34, Issue -, Pages 128-147

Publisher

ELSEVIER
DOI: 10.1016/j.ensm.2020.09.009

Keywords

Li-S batteries; Organic liquid electrolyte; Solvents; Lithium salts; Additives; E/S ratios

Funding

  1. National Key Research and Development Program [2018YFA0702002, 2019YFA0705701]
  2. National Natural Science Foundation of China [U1601211, 51573215, 21506260, 21706294, 21978332]
  3. National Key Research and Development Program (Japan-China Joint Research Program) [2017YFE9127900]
  4. Guangdong Basic and Applied Basic Research Foundation [2017B090901003, 2019A1515010803, 2020A151501445]
  5. Guangzhou Scientific and Technological Planning Project [201804020025, 201707010424, 201904010271]
  6. Fundamental Research Funds for the Central Universities [18lgpy32, 19lgpy07, 20lgpy11]
  7. National Natural Science Foundation of Guangdong Province [U1601211]

Ask authors/readers for more resources

Lithium-sulfur batteries have been extensively studied as a promising candidate for large-scale energy storage systems due to their high theoretical cathodic capacity and low cost of sulfur. However, challenges such as inferior cycle stability and low charging efficiency hinder their practical application. Researchers have focused on developing novel host materials for the sulfur cathode and protecting the lithium metal anode, but the high solubility of lithium sulfide intermediates in liquid electrolytes remains a primary issue.
To meet future application requirement for large-scale energy storage systems, as a promising candidate, lithium-sulfur battery has attracted extensive attention and has been thoroughly explored due to its high theoretical cathodic capacity (1, 675 mAh g(-1)) and the low cost of sulfur. Its practical application is hindered by the known challenges, including inferior cycle stability and low charging efficiency etc. despite extensive studies in last decades. Most researchers have focused on developing novel host materials for sulfur cathode, protecting lithium metal anode by artificial SEI layers, and structure optimization of Li-S battery. The primary issue is the high solubility of lithium sulfide intermediates (Li2Sn , 3 < n < 8) in liquid organic electrolytes, which results in a poly sulfide shuttle effect and rapid capacity fading. Compared with solid-state electrolytes, up to now, traditional liquid state electrolytes are still the most favorable choice for the commercialization of Li-S batteries. Each component of liquid electrolyte, such as solvents, lithium salts and additives, is related to dissolution of polysulfide intermediates and formation of SEI film on lithium metal anode. Motivated by strong demand of the state-of-art electrolyte systems for high performance Li-S batteries, researchers have tried to explore more novel electrolyte systems. In this review, the recent progress of liquid electrolyte systems are summarized and discussed. In addition, we also review some new concepts and the reaction mechanisms of the electrolytes in Li-S batteries.

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