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September 30, 2025Advanced Materials8 citations

Mechanically Induced Bridged Interlayer Enabling Highly Reversible All‐Solid‐State Sulfur Cathodes

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MWMinkang WangHSHan SuFZFan Zhao

Key Points

  • The sulfur cathode design maintains 93.8% capacity retention over 1600 cycles at high current densities, illustrating excellent stability.
  • Utilizing a mechanochemical synthesis approach, the in situ generated LPSI interlayer enhances Li-ion conduction pathways and facilitates redox kinetics.
  • Pouch cells with the S@LPSI/LPSC cathode achieve energy densities over 420 Wh kg−1, underlining their practical applicability.
  • Industrial implementation of all‐solid‐state lithium–sulfur batteries is supported through improved cycling stability and reduced diffusion resistance.

Abstract

Abstract All‐solid‐state lithium–sulfur batteries (ASSLSBs) show great promise for next‐generation energy storage systems due to their high energy density, low cost, and enhanced safety features. However, constrained solid‐state sulfur conversion severely limits their cycling stability and rate performance, presenting significant obstacles to industrial implementation. Here, a mechanochemical synthesis approach is developed that simultaneously addresses multiscale kinetic limitations of all‐solid‐state sulfur cathodes across molecular, interfacial, and electrode levels. The in situ generated amorphous lithium iodothiophosphate (LPSI) interlayer, chemically bridged between sulfur active materials and sulfide catholytes, establishes effective and durable Li‐ion conduction pathways through reduced diffusion resistance and reinforced interfacial contact. Moreover, the LPSI functions as percolated redox mediators that modulate sulfur redox pathways and electrochemically activate sulfur species, facilitating rapid sulfur redox kinetics. The developed sulfur cathode (S@LPSI/LPSC) demonstrates exceptional electrochemical performance, maintaining 93.8% capacity retention, exceeding 1600 cycles at a high sulfur loading of 6 mg cm −2 and an elevated current density of 5 mA cm −2 . Pouch cells incorporating the S@LPSI/LPSC cathode demonstrate gravimetric energy densities exceeding 420 Wh kg −1 . This work provides valuable insights into highly reversible all‐solid‐state sulfur cathodes, significantly advancing the industrialization of ASSLSB technology.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68dc261d8a7d58c25ebb2a87https://doi.org/10.1002/adma.202513336
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