Progress and perspectives of in situ polymerization method for lithium-based batteries

IF 24.5 Q1 CHEMISTRY, PHYSICAL
Guanyou Xiao, Hao Xu, Chen Bai, Ming Liu, Yan-Bing He
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引用次数: 4

Abstract

The application of lithium-based batteries is challenged by the safety issues of leakage and flammability of liquid electrolytes. Polymer electrolytes (PEs) can address issues to promote the practical use of lithium metal batteries. However, the traditional preparation of PEs such as the solution-casting method requires a complicated preparation process, especially resulting in side solvents evaporation issues. The large thickness of traditional PEs reduces the energy density of the battery and increases the transport bottlenecks of lithium-ion. Meanwhile, it is difficult to fill the voids of electrodes to achieve good contact between electrolyte and electrode. In situ polymerization appears as a facile method to prepare PEs possessing excellent interfacial compatibility with electrodes. Thus, thin and uniform electrolytes can be obtained. The interfacial impedance can be reduced, and the lithium-ion transport throughput at the interface can be increased. The typical in situ polymerization process is to implant a precursor solution containing monomers into the cell and then in situ solidify the precursor under specific initiating conditions, and has been widely applied for the preparation of PEs and battery assembly. In this review, we focus on the preparation and application of in situ polymerization method in gel polymer electrolytes, solid polymer electrolytes, and composite polymer electrolytes, in which different kinds of monomers and reactions for in situ polymerization are discussed. In addition, the various compositions and structures of inorganic fillers, and their effects on the electrochemical properties are summarized. Finally, challenges and perspectives for the practical application of in situ polymerization methods in solid-state lithium-based batteries are reviewed.

Abstract Image

锂基电池原位聚合方法的进展与展望
锂基电池的应用受到液体电解质泄漏和易燃性等安全问题的挑战。聚合物电解质(PE)可以解决促进锂金属电池实际使用的问题。然而,传统的PE制备方法,如溶液浇铸法,需要复杂的制备过程,尤其会导致副溶剂蒸发问题。传统PE的大厚度降低了电池的能量密度,增加了锂离子的运输瓶颈。同时,难以填充电极的空隙以实现电解质和电极之间的良好接触。原位聚合是制备与电极具有良好界面相容性的PE的一种简单方法。因此,可以获得薄且均匀的电解质。界面阻抗可以降低,并且界面处的锂离子传输吞吐量可以增加。典型的原位聚合工艺是将含有单体的前体溶液植入电池中,然后在特定的引发条件下原位固化前体,并已广泛应用于PE和电池组件的制备。本文综述了原位聚合方法在凝胶聚合物电解质、固体聚合物电解质和复合聚合物电解质中的制备和应用,讨论了原位聚合的不同单体种类和反应。此外,还综述了无机填料的各种组成和结构,以及它们对电化学性能的影响。最后,综述了原位聚合方法在固态锂基电池中实际应用的挑战和前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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