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Stabilizing Li 4 SnS 4 Electrolyte from Interface to Bulk Phase with a Gradient Lithium Iodide/Polymer Layer in Lithium Metal Batteries.

Ouwei ShengChengbin JinZhijin JuJianhui ZhengTiefeng LiuYujing LiuYao WangJianmin LuoXin-Yong TaoJianwei Nai
Published in: Nano letters (2022)
Sulfide electrolytes promise superior ion conduction in all-solid-state lithium (Li) metal batteries, while suffering harsh hurdles including interior dendrite growth and instability against Li and moist air. A prerequisite for solving such issues is to uncover the nature of the Li/sulfide interface. Herein, air-stable Li 4 SnS 4 (LSS) as a prototypical sulfide electrolyte is selected to visualize the dynamic evolution and failure of the Li/sulfide interface by cryo-electron microscopy. The interfacial parasitic reaction (2Li + 2Li 4 SnS 4 = 5Li 2 S + Sn 2 S 3 ) is validated by direct detection of randomly distributed Li 2 S and Sn 2 S 3 crystals. A bifunctional buffering layer is consequently introduced by self-diffusion of halide into LSS. Both the interface and the grain boundaries in LSS have been stabilized, eliminating the growing path of Li dendrites. The buffering layer enables the durability of Li symmetric cell (1500 h) and high-capacity retention of the LiFePO 4 full-cell (95%). This work provides new insights into the hierarchical design of sulfide electrolytes.
Keyphrases
  • solid state
  • ion batteries
  • ionic liquid
  • high resolution
  • stem cells
  • electron microscopy
  • molecular dynamics simulations