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SnF2-Catalyzed Lithiophilic-Lithiophobic Gradient Interface for High-Rate PEO-Based All-Solid-State Batteries.

Kai Wu1,2, Ao Li1, Jin Tan1

  • 1College of Materials Science and Engineering, Hunan University, Changsha, 410082, China.

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|August 2, 2024
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Summary

This study introduces a novel gradient interphase for solid-state lithium metal batteries, significantly improving lifespan and performance by controlling dendrite growth and enhancing ion transport for safer, high-rate applications.

Keywords:
SnF2 additivesall-solid-state batteriesfast chargelithiophic-lithiophobic interfacepolyethylene oxide

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Area of Science:

  • Materials Science
  • Electrochemistry
  • Energy Storage

Background:

  • Polyethylene oxide (PEO)-based all-solid-state lithium metal batteries (ASSLMBs) face challenges with lithium dendrite growth and poor ion transport at high rates.
  • Suboptimal interfacial chemistry and kinetics hinder the cycling stability and performance of ASSLMBs.

Purpose of the Study:

  • To develop a stable and efficient solid electrolyte interphase (SEI) for high-rate ASSLMBs.
  • To investigate the role of a lithiophilic-lithiophobic gradient SEI in suppressing dendrite growth and enhancing Li+ transport.
  • To improve the overall performance and safety of ASSLMBs.

Main Methods:

  • In situ formation of a SnF2-catalyzed lithiophilic-lithiophobic gradient SEI (SCG-SEI) composed of Li$_{x}$Sn$_{y}$/LiF-Li$_{2}$O.
  • Characterization of the SEI layer's structure, composition, and properties.
  • Electrochemical testing of symmetrical cells and full cells (LiFePO$_{4}$ and LiNi$_{0.8}$Mn$_{0.1}$Co$_{0.1}$O$_{2}$ cathodes) under various conditions.

Main Results:

  • The SCG-SEI features a LiF-Li$_{2}$O rich upper layer for ionic conductivity and a Li$_{x}$Sn$_{y}$ alloy layer to reduce nucleation overpotential and promote electron transport.
  • Achieved over 46.7-fold and 3.5-fold improvements in lifespan and critical current density of symmetrical cells, respectively.
  • Demonstrated over 1000 cycles with 80.0% capacity retention at 5 C in LiFePO$_{4}$-based ASSLMBs and excellent performance/safety at 100 °C.

Conclusions:

  • The developed lithiophilic-lithiophobic gradient interfacial chemistry is crucial for high-rate and safe ASSLMBs.
  • The SCG-SEI effectively mitigates dendrite growth and enhances Li+ kinetics, paving the way for practical applications.
  • This strategy offers a promising approach for designing next-generation solid-state batteries.