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In situ observation of the deterioration process of sulfide-based solid electrolytes using airtight and air-flow TEM systems. | LitMetric

AI Article Synopsis

  • Sulfide-based solid electrolytes (SEs) are crucial for next-generation all-solid-state batteries but suffer from poor stability when exposed to air, leading to toxic H2S generation and decreased ionic conductivity.
  • The research focused on understanding the degradation mechanisms of these SEs by using a specialized transmission electron microscope (TEM) designed for studying materials in an air-flow environment.
  • Findings revealed that exposure to air causes significant morphological changes and the decomposition of lithium tin sulfide (Li4SnS4) due to reactions with moisture, highlighting the importance of the developed TEM system in studying the stability of sulfide-based SEs.

Article Abstract

Sulfide-based solid electrolytes (SEs) exhibiting high ionic conductivity are indispensable battery materials for next-generation all-solid-state batteries. However, sulfide-based SEs have a major drawback in their low chemical stability in air. When exposed to H2O or O2 gas, toxic H2S is generated, and their ionic conductivity considerably declines. However, their degradation mechanism caused by air exposure has not been understood yet. To clarify the degradation process, in this study, we developed a transmission electron microscope (TEM) system to evaluate the air stability of battery materials. Using a vacuum transfer double-tilt TEM holder with a gas-flow system, the in situ observation of the degradation process was conducted for a sulfide-based Li4SnS4 glass ceramic under an air-flow environment. Consequently, electron diffraction (ED) patterns and TEM images could clearly capture morphological changes and the amorphization process caused by air exposure. Moreover, based on the analysis of ED patterns, it is observed that Li4SnS4 is likely to decompose because of the reaction with H2O in air. Therefore, this airtight and air-flow TEM system should be effective in clarifying the process of the deterioration of sulfur-based SEs during exposure to air.

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Source
http://dx.doi.org/10.1093/jmicro/dfab022DOI Listing

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