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Smart Solid-State Interphases Enable High-Safety and High-Energy Practical Lithium Batteries.

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A novel all-in-one strategy creates smart, safe, and simple (3S) pouch cells using combined liquid and solid-state electrolytes. These advanced batteries demonstrate enhanced safety and superior performance under harsh conditions.

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high‐energyhigh‐safetypractical batteriessmartsolid‐state interphases

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Area of Science:

  • Materials Science
  • Electrochemistry
  • Battery Technology

Background:

  • Electrochemical performance of batteries is nearing its limits, necessitating urgent solutions for safety concerns.
  • Developing safer and more efficient battery designs is critical for next-generation energy storage.

Purpose of the Study:

  • To design and develop a smart, safe, and simple (3S) all-in-one pouch-type battery cell.
  • To integrate liquid and solid-state electrolytes for improved safety and performance.

Main Methods:

  • An all-in-one strategy was employed to create a pouch-type LiNi0.8Co0.1Mn0.1O2||Graphite@SiO (NCM811||Gr@SiO) cell.
  • The cell's performance and safety were evaluated under thermal abuse and high voltage conditions.

Main Results:

  • The 3S NCM811||Gr@SiO pouch cell exhibited superior capacity retention (84.6% after 250 cycles) compared to conventional cells (47.8%).
  • Significant safety improvements were observed: reduced self-generated heat (45°C), increased trigger temperature (40°C), and decreased peak temperature (118°C).

Conclusions:

  • The enhanced performance is attributed to stable anion-induced interphases and a local solid-state electrolyte protection layer.
  • This approach offers a new paradigm for designing practical, high-performance, and safe batteries, challenging conventional design principles.