Enhancement and architectural optimization of polyvinylidene fluoride-based solid polymer electrolytes for advanced solid-state lithium-metal batteries
作者:Dongbo Yang, Xiaoping Chen, Changzheng Chen, Weiheng Chen, Zhuolin Huang, Heyuan Wang, Shan‐Shan Chen, Zhongqing Jiang · 发表于:Journal of Power Sources · 年份:2025 · DOI:10.1016/j.jpowsour.2025.237343 · 被引用次数:9 · 研究领域:Advanced Battery Materials and Technologies、Advancements in Battery Materials、Advanced Battery Technologies Research
Energy storage devices have become an integral aspect of both industrial production and everyday life, with the rapidly escalating demand for batteries that possess high energy-density and robust safety features. This paper delves into the inherent properties of diverse solid-state electrolytes (SSEs) employed in solid-state lithium-metal batteries (SSLMBs), which are distinguished by their high energy-density, with the objective of assessing their suitability for application in SSLMBs. Among the various types of SSEs, polyvinylidene fluoride (PVDF)-based solid polymer electrolytes (SPEs) emerge as one of the most promising candidates, which has received much attention for its wide electrochemical window, good thermal and chemical stability, and ability to be better adapted to lithium-metal anode. Furthermore, optimizing the ionic conductivity of the SSEs, improving the wettability at the electrode/electrolyte interface, and effectively mitigating the growth of lithium dendrites are crucial for enhancing the performance of SSLMBs with high energy-density. Therefore, this paper reviews and analyzes the modification and structural design of PVDF-based SPEs from various aspects, and summarizes the methods to overcome the inherent defects of PVDF-based SPEs and improve their performance. Finally, based on existing literature, this paper provides an outlook on the research directions for the application of PVDF-based SPEs in SSLMBs.