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May 27, 2026Small0 citations

Deciphering Emergent Oxyhalide Solid‐State Electrolytes for Next‐Generation All‐Solid‐State Lithium Metal Batteries

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ZTZhouwei TanZLZuxin LongLLLiansheng Li

Key Points

  • This review aims to explore the evolution and potential of oxyhalide solid-state electrolytes in all-solid-state lithium metal batteries.
  • Systematic summary of recent advances in oxyhalide solid-state electrolytes
  • Analysis of ion-transport behavior in crystalline and amorphous states
  • Evaluation of design strategies for improving electrochemical performance and stability
  • Identified halide oxyhalides offer superior ionic conductivity compared to traditional SSEs
  • Enhanced humidity stability and mechanical robustness observed in the optimized oxyhalide systems
  • Critical insights on interfacial chemistry's role in overall battery performance outlined

Abstract

The conventional lithium-ion batteries face safety risks from flammable electrolytes and stagnating energy density. All-solid-state lithium metal batteries (ASSLMBs) represent a paradigm shift, leveraging non-flammable solid-state electrolytes (SSEs) and high-capacity lithium metal anodes to overcome these hurdles. Among SSEs, halides are promising candidates due to their high ionic conductivity, exceptional oxidation stability, and deformability. However, their commercial viability is hindered by hygroscopicity, inadequate ionic conductivity compared to sulfide benchmarks, and interfacial instability with lithium metal. Recently, oxyhalide SSEs have been designed to bridge this gap by integrating oxygen into halide structures for superior electrochemical properties. This review systematically summarizes recent advances in emerging oxyhalide SSEs, with a focus on Li─M─ -O─Cl systems. We discuss their development, synthesis, and structural classification, and analyze ion-transport behavior in both crystalline and amorphous states. Design strategies for enhancing humidity stability, electrochemical window, and mechanical robustness are critically evaluated. We further examine battery-level applications, emphasizing the role of interfacial chemistry and microstructural control in determining electrochemical performance. Finally, we outline key challenges and future directions to accelerate the practical implementation of oxyhalide-based ASSLMBs.

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Cite This Study

Tan et al. (2026) studied this question.

synapsesocial.com/papers/6a168a4b0c924ddd1bd58ebchttps://doi.org/10.1002/smll.73883
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