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用于安全锂离子电池的基于相变材料的热调节分离器

Thermoregulating Separators Based on Phase-Change Materials for Safe Lithium-Ion Batteries.

作者信息

Liu Zhifang, Hu Qiaomei, Guo Songtao, Yu Le, Hu Xianluo

机构信息

State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, 430074, China.

出版信息

Adv Mater. 2021 Apr;33(15):e2008088. doi: 10.1002/adma.202008088. Epub 2021 Mar 12.

Abstract

Safety issues in lithium-ion batteries (LIBs) have aroused great interest owing to their wide applications, from miniaturized devices to large-scale storage plants. Separators are a vital component to ensure the safety of LIBs; they prevent direct electric contact between the cathode and anode while allowing ion transport. In this study, the first design is reported for a thermoregulating separator that responds to heat stimuli. The separator with a phase-change material (PCM) of paraffin wax encapsulated in hollow polyacrylonitrile nanofibers renders a wide range of enthalpy (0-135.3 J g ), capable of alleviating the internal temperature rise of LIBs in a timely manner. Under abuse conditions, the generated heat in batteries stimulates the melting of the encapsulated PCM, which absorbs large amounts of heat without creating a significant rise in temperature. Experimental simulation of the inner short-circuit in prototype pouch cells through nail penetration demonstrates that the PCM-based separator can effectively suppress the temperature rise due to cell failure. Meanwhile, a cell penetrated by a nail promptly cools down to room temperature within 35 s, benefiting from the latent heat-storage of the unique PCM separator. The present design of separators featuring latent heat-storage provides effective strategies for overheat protection and enhanced safety of LIBs.

摘要

锂离子电池(LIBs)的安全问题因其从小型化设备到大规模储能电站的广泛应用而引起了极大关注。隔膜是确保锂离子电池安全的关键部件;它们防止阴极和阳极之间直接电接触,同时允许离子传输。在本研究中,报道了首个对热刺激做出响应的温度调节隔膜设计。具有封装在中空聚丙烯腈纳米纤维中的石蜡相变材料(PCM)的隔膜具有宽范围的焓(0 - 135.3 J g),能够及时缓解锂离子电池内部的温度升高。在滥用条件下,电池中产生的热量刺激封装的相变材料熔化,吸收大量热量而不会导致温度显著升高。通过钉子穿透对原型软包电池内部短路进行的实验模拟表明,基于相变材料的隔膜可以有效抑制由于电池故障引起的温度升高。同时,被钉子穿透的电池在35秒内迅速冷却至室温,这得益于独特的相变材料隔膜的潜热存储。目前这种具有潜热存储功能的隔膜设计为锂离子电池的过热保护和安全性提升提供了有效策略。

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