Energy Storage Science and Technology ›› 2022, Vol. 11 ›› Issue (6): 1902-1918.doi: 10.19799/j.cnki.2095-4239.2022.0206

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Advance in organics enhanced sulfide-based solid-state batteries

LI Yitao(), SHEN Kaier, PANG Quanquan()   

  1. School of Materials Science and Engineering, Beijing Key Laboratory for Advanced Battery Materials of Theory and Technology, Peking University, Beijing 100871, China
  • Received:2022-04-15 Revised:2022-05-15 Online:2022-06-05 Published:2022-06-13
  • Contact: PANG Quanquan E-mail:liyitao@pku.edu.cn;qqpang@pku.edu.com

Abstract:

Using solid-state electrolytes (SSEs) to replace liquid electrolytes (LEs) can guarantee a high energy density and safety for developing solid-state batteries. Sulfide-based SSEs have received much attention because of their significant advantages, like high ionic conductivity. However, they face several challenges: poor electrode/electrolyte contact, interface side reaction with an electrode, and poor air stability. As a common solution, it frequently requires collaboration with some organics, such as organic solvents or polymers, to improve battery performance. This paper reviews the synergistic effects of different organics on sulfide-based SSEs. First, the development status of quasi solid-state batteries (QSSBs) based on sulfide-based SSEs is reviewed. From the perspective of adding LEs or solution at the cathode, electrolyte, anode, and mutual interfaces, the enhancement of adding organics to QSSBs, such as interface infiltration and constructing a protective layer, are described. Second, the wet-and dry-preparation of polymer/sulfide composite SSEs are introduced. The differences in the preparation processes between polar and non-polar polymer binders are compared, and the influence of organics on the ionic conductivity of composite electrolytes is emphatically analyzed. The process of improving the internal interface of the composite cathode using the solution method is described. Moreover, the preparation technology and the development prospect of the sheet-type electrode are introduced. Finally, the difficulties faced using organics in cooperating with sulfide-based SSEs are summarized. Future research work's development directions are proposed, providing ideas for assembling high-performance sulfide-based solid-state batteries.

Key words: quasi solid-state batteries, solid-state electrolyte, sulfide, organics, ionic conductivity

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