4.8 Article

Thermal Stability between Sulfide Solid Electrolytes and Oxide Cathode

Journal

ACS NANO
Volume 16, Issue 10, Pages 16158-16176

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c04905

Keywords

sulfide solid electrolyte; thermal stability; thermal safety; interfacial reaction; sulfide all-solid-state battery

Funding

  1. Department of Science and Technology of Jiangsu Province [BE2020003]
  2. Key Program-Automobile Joint Fund of National Natural Science Foundation of China [U1964205]
  3. General Program of National Natural Science Foundation of China [51972334]
  4. General Program of National Natural Science Foundation of Beijing [2202058]
  5. Cultivation project of leading innovative experts in Changzhou City [CQ20210003]
  6. National Overseas High-level Expert Recruitment Program [E1JF021E11]
  7. Talent Program of Chinese Academy of Sciences
  8. Yangtze River Delta Physics Research Center and Tianmu Lake Institute of Advanced Energy Storage Technologies [TIES-SS0001]
  9. Science and Technology Research Institute of China Three Gorges Corporation [202103402]

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This study experimentally investigates the thermal stability performance of sulfide solid electrolytes and proposes an improved method to enhance the thermal stability between sulfide solid electrolytes and oxide cathodes.
In pursuit of high-energy/power density, lithium-ion batteries suffer from increasing safety risks that need to be urgently solved. These safety problems promisingly might be solved by replacing liquid electrolytes (LEs) with inorganic solid electrolytes (SEs), because of their high thermal stability and nonflammability. However, thermal stability studies on sulfide SEs have been rarely reported, due to their extremely high reactivity, strong corrosiveness, instability to air, toxic gas release, etc. To fill this gap, thermal stability performances of sulfide SEs are verified from the perspectives of essential combustion elements in this work. Simple and effective experimental devices/approaches have been developed to systematically study the thermodynamic and kinetic properties of thermal stability between typical sulfide SEs (Li3PS4, Li7P3S11, Li6PS5Cl, LSPSCl, Li4SnS4) and oxide cathode Li1-xCoO2 with different delithiation states. Practical improved methods are realized to block the thermochemical interfacial reaction for enhanced thermal stability between sulfide SEs and oxide cathodes.

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