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July 14, 2025ACS Nano19 citations

Harnessing Disorder for High-Performance Solid-State Electrolytes

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ZGZhongkai GuoQZQixun ZhuTCTianming Chen

Key Points

  • Solid-state electrolytes offer safer alternatives to liquid ones, enhancing battery performance.
  • High ionic conductivity inorganic solid-state electrolytes face challenges like interfacial instability and grain boundaries resistance.
  • Engineered disorder can improve ion diffusion and reduce interfacial resistance in solid-state electrolytes.
  • Controlled disorder is essential for developing reliable, high-density solid-state batteries for future applications.

Abstract

Solid-state electrolytes (SSEs) have emerged as transformative alternatives to traditional liquid electrolytes, addressing critical challenges while enabling safer, wider operational voltage windows and higher density batteries. High ionic conductivity inorganic solid-state electrolytes (HC-ISEs), such as LGPS (Li10GeP2S12), exhibit exceptional ionic conductivity but suffer from interfacial instability, grain boundaries resistance, poor compatibility with lithium metal anodes, and environmental sensitivity. Recent studies have revealed that engineered disorder, through cationic site disordering, amorphous phase integration, and glass-ceramic structural irregularities, can optimize ion diffusion pathways, mitigate interfacial resistance, and enhance electrochemical stability. This review systematically analyzes how controlled disorder elevates HC-ISEs' performance, explores strategies to tailor disordered architectures, and underscores their pivotal role in realizing next-generation solid-state batteries with high reliability and energy density.

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Cite This Study

Guo et al. (2025) studied this question.

synapsesocial.com/papers/689a02b6e6551bb0af8cc3a9https://doi.org/10.1021/acsnano.5c07439
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