In Situ Polymerization as a Promising Strategy for Solid-State Sodium–Metal Batteries: Mechanisms, Advances, and Perspectives

材料科学 原位聚合 聚合 纳米技术 聚合物 电解质 聚合物电解质 储能 原位 电化学储能 离子液体 电化学 导电聚合物 电池(电)
作者
Qihao Tang,Na Chen,Jiaming Zhang,Le Zhao,Xin Fan,Dan Sun,Ze Feng,Haiyan Wang
出处
期刊:ACS Nano [American Chemical Society]
卷期号:20 (32): 22328-22361
标识
DOI:10.1021/acsnano.6c07001
摘要

Sodium-metal batteries (SMBs) are seen as a promising energy storage option due to their high energy density, abundant sodium resources, and cost-effectiveness. However, traditional organic liquid electrolytes (LEs) suffer from inherent safety risks, including leakage and flammability. Solid polymer electrolytes (SPEs) are regarded as a viable alternative to LEs for safer SMBs. However, the poor interfacial contact and insufficient ion transport associated with conventional ex situ prepared SPEs make it difficult for them to outperform LEs. The in situ polymerization technique, characterized by its process scalability and ability to form conformal interfaces, has proven effective in overcoming the obstacles associated with SPEs. In this review, we summarize recent research on in situ polymerization techniques for SMBs, including free-radical polymerization, ionic polymerization, electropolymerization, and related approaches. The importance of in situ polymerization in streamlining the preparation process, enhancing the compatibility of the electrode-electrolyte interface, bolstering battery safety, and optimizing electrochemical performance is highlighted. Furthermore, we systematically discuss the multiscale design principles of this technology, emphasizing precursor formulation, reaction kinetics, and targeted bulk-matrix properties. The advanced functional applications of in situ polymerization in SMBs, particularly in suppressing crosstalk effects, regulating solvation structures, and designing artificial interfacial layers and materials, are discussed. Finally, critical challenges, future prospects and pathways toward the practical, large-scale application of in situ polymerization are evaluated. This review aims to provide systematic insights to facilitate the rapid progress and implementation of in situ-polymerized electrolytes in SMBs.

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