PVDF基盐包聚合物电解质的研究进展与展望

Research progress and prospects of PVDF-based polymer-in-salt electrolytes

  • 摘要: 固态锂金属电池(SSLMBs)凭借高能量密度与本质安全性,成为下一代储能技术的核心方向,而固态电解质(SSEs)是其实现性能突破的关键支撑。盐包聚合物(PIS)电解质通过调控聚合物与锂盐的配比(锂盐质量分数≥50%),构建高效的锂离子传输通道,有效突破了传统聚合物电解质在室温下的离子电导率瓶颈。聚偏氟乙烯(PVDF)因其高介电常数、优异的锂盐溶解能力、良好的机械强度及电化学稳定性,成为PIS电解质的理想基质;然而,单一PVDF体系仍面临相分离、机械强度失衡及界面相容性不足等固有缺陷。本文系统综述了PVDF基PIS电解质的性能优势与离子传输机制,重点阐述了锂盐选择与配比调控、多功能无机填料复合、界面构筑与优化以及聚合物共混等四大改性策略的作用原理与研究进展。最后,总结了PVDF基PIS电解质在性能适配与规模化制备方面所面临的核心挑战,并展望了机制优化与结构创新等未来发展方向,以期为高性能PVDF基PIS电解质的开发及SSLMBs的实用化提供参考。

     

    Abstract: Solid-state lithium metal batteries (SSLMBs) have emerged as the core direction for next-generation energy storage due to their high energy density and intrinsic safety, with solid-state electrolytes (SSEs) serving as the key enabler for performance breakthroughs. Polymer-in-salt (PIS) electrolytes overcome the bottleneck of low room-temperature ionic conductivity in traditional polymer electrolytes by adjusting the polymer-to-lithium salt ratio (mass fraction of lithium salt ≥50%) and constructing fast lithium-ion transport channels. Polyvinylidene fluoride (PVDF) has become an ideal matrix material for PIS electrolytes owing to its high dielectric constant, excellent lithium salt solubility, mechanical strength, and electrochemical stability. However, single-component systems suffer from inherent drawbacks such as phase separation, imbalanced mechanical strength, and insufficient interfacial compatibility. This review systematically summarizes the performance advantages and ion transport mechanisms of PVDF-based PIS electrolytes, with a focus on elucidating the working principles and research progress of four core modification strategies: lithium salt selection and ratio optimization, multifunctional inorganic filler compositing, interface construction and optimization, and polymer blending. Finally, it outlines the core challenges facing PVDF-based PIS electrolytes in terms of performance adaptability and large-scale fabrication, prospects future directions related to mechanism refinement and structural innovation, and provides references for the development of high-performance PVDF-based PIS electrolytes and the practical application of SSLMBs.

     

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