School of Materials Science and Engineering, State Key Laboratory of Material Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan, 430074, P.R. China.
Department of Mechanics, School of Aerospace Engineering, Huazhong University of Science and Technology, Wuhan, 430074, P.R. China.
Adv Sci (Weinh). 2023 Apr;10(10):e2201718. doi: 10.1002/advs.202201718. Epub 2023 Jan 25.
Good safety, high interfacial compatibility, low cost, and facile processability make polymer-based solid electrolytes promising materials for next-generation batteries. Key issues related to polymer-based solid electrolytes, such as synthesis methods, ionic conductivity, and battery architecture, are investigated in past decades. However, mechanistic understanding of the ionic conduction is still lacking, which impedes the design and optimization of polymer-based solid electrolytes. In this review, the ionic conduction mechanisms and optimization strategies of polymer-based solid electrolytes, including solvent-free polymer electrolytes, composite polymer electrolytes, and quasi-solid/gel polymer electrolytes, are summarized and evaluated. Challenges and strategies for enhancing the ionic conductivity are elaborated, while the ion-pair dissociation, ion mobility, polymer relaxation, and interactions at polymer/filler interfaces are highlighted. This comprehensive review is especially pertinent for the targeted enhancement of the Li-ion conductivity of polymer-based solid electrolytes.
良好的安全性、高界面兼容性、低成本和易于加工性,使聚合物基固体电解质成为下一代电池有前景的材料。在过去几十年中,人们研究了与聚合物基固体电解质相关的关键问题,如合成方法、离子电导率和电池结构。然而,离子传导的机理理解仍然缺乏,这阻碍了聚合物基固体电解质的设计和优化。在这篇综述中,总结和评估了聚合物基固体电解质(包括无溶剂聚合物电解质、复合聚合物电解质和准固态/凝胶聚合物电解质)的离子传导机理和优化策略。阐述了提高离子电导率的挑战和策略,同时强调了离子对离解、离子迁移率、聚合物弛豫以及聚合物/填料界面相互作用。这篇综述特别有助于有针对性地提高聚合物基固体电解质的锂离子电导率。