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December 4, 2025Advanced Materials21 citations

Advanced Design and Characterization of Polyether‐Based Solid‐State Electrolytes for High‐Energy‐Density Lithium Batteries

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JHJinze HouJZJingpei ZhangXLXinyi Liu

Key Points

  • Solid‐state electrolytes enhance performance in lithium batteries, particularly in high-energy applications.
  • Key evidence shows improved ion transport through advanced modification strategies like multi-component compounding.
  • The characterization approach integrates multiscale techniques to uncover structure–property relationships of electrolytes.
  • This research implies potential scalability in producing consistent and effective solid-state electrolytes for battery applications.

Abstract

Abstract Polyether‐based solid‐state electrolytes have shown great potential in lithium batteries due to their excellent interfacial flexibility and high solvation ability for lithium salts. However, the problems of limited ion transport and insufficient interfacial stability have restricted the application of polyether‐based electrolytes in high‐energy‐density lithium batteries. To tackle these problems, researchers have explored a variety of strategies, such as multi‐component compounding and structural regulation, and developed a vast array of solid‐state electrolytes. Therefore, this review first summarizes the key modification strategies and representative examples of electrolytes from a systematic design perspective, aiming at the two aforementioned major issues. Meanwhile, to precisely implement the above strategies and to design more effective modification strategies, latent yet valuable structure–property relationships should be further uncovered. Thus, multiscale characterizations are rationally integrated through representative case studies. Finally, it summarizes the reported performance of representative polyether‐based solid‐state pouch cells, emphasizes scale‐up and batch‐to‐batch consistency, and outlines future research directions for translating these electrolytes into high‐energy, market‐ready batteries.

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Cite This Study

Hou et al. (2025) studied this question.

synapsesocial.com/papers/6930dc92ea1aef094cca2a43https://doi.org/10.1002/adma.202515430
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Advanced Design and Characterization of Polyether‐Based Solid‐State Electrolytes for High‐Energy‐Density Lithium Batteries2025
  2. 2Polymer Electrolytes for All‐Solid‐State Lithium Batteries Materials, Mechanisms, and Manufacturing2025 · 1 citations
  3. 3Integrated multicomponent design strategies to enhance the electrochemical performance of solid-state lithium metal batteries on interfacial stability of composite polymer electrolytes2026
  4. 4Advanced Electrolyte Materials Design for High‐Energy Lithium Metal Batteries Beyond 500 Wh Kg <sup>−1</sup>2026 · 2 citations
  5. 5Molecular Design of Ether-Based Electrolyte Solvents for High-Performance Lithium Batteries2026