Bai Zujin, Zhang Pei, Kang Furu, Song Zeyang, Xiao Yang
School of Safety Science and Engineering, Xi'an University of Science and Technology (XUST), Xi'an 710054, China.
Key Laboratory of Mine Exploitation and Disaster Prevention in Western China (XUST), Ministry of Education, Xi'an 710054, China.
Polymers (Basel). 2025 Aug 31;17(17):2374. doi: 10.3390/polym17172374.
Lithium-ion batteries (LIBs) have garnered extensive application across various domains. However, frequent safety incidents associated with these LIBs have emerged as a significant impediment to their further advancement. Consequently, there is an urgent necessity to develop a novel fire extinguishing agent that possesses both rapid fire suppression and efficient cooling capabilities, thereby effectively mitigating the occurrence and propagation of fires in LIBs. This study pioneers the development of an adaptive thermosensitive microcapsule (TM) fire extinguishing agent synthesized via in situ polymerization. The TM encapsulates a ternary composite core-perfluorohexanone (CFO), heptafluorocyclopentane (CHF), and 2-bromo-3,3,3-trifluoropropene (2-BTP)-within a melamine-urea-formaldehyde (MUF) resin shell. The TM was prepared via in situ polymerization, combined with FE-SEM, FTIR, TG-DSC, and laser particle size analysis to verify that the TM had a uniform particle size and complete coating structure. The results demonstrate that the TM can effectively suppress the thermal runaway (TR) of LIBs through the synergistic effects of physical cooling, chemical suppression, and gas isolation. Specifically, the peak TR temperature of a single-cell LIB is reduced by 14.0 °C, and the heating rate is decreased by 0.17 °C/s. Additionally, TM successfully blocked the propagation of TR thereby preventing its spread in the dual-LIB module test. Limitations of single-component agents are overcome by this innovative system by leveraging the ternary core's complementary functionalities, enabling autonomous TR suppression without external systems. Furthermore, the TM design integrates precise thermal responsiveness, environmental friendliness, and cost-effectiveness, offering a transformative safety solution for next-generation LIBs.
锂离子电池(LIBs)已在各个领域得到广泛应用。然而,与这些LIBs相关的频繁安全事故已成为其进一步发展的重大障碍。因此,迫切需要开发一种新型灭火剂,该灭火剂具有快速灭火和高效冷却能力,从而有效减轻LIBs火灾的发生和蔓延。本研究率先开发了一种通过原位聚合法合成的自适应热敏微胶囊(TM)灭火剂。TM在三聚氰胺-尿素-甲醛(MUF)树脂壳内封装了一种三元复合芯——全氟己酮(CFO)、七氟环戊烷(CHF)和2-溴-3,3,3-三氟丙烯(2-BTP)。通过原位聚合法制备TM,并结合场发射扫描电子显微镜(FE-SEM)、傅里叶变换红外光谱(FTIR)、热重-差示扫描量热法(TG-DSC)和激光粒度分析,以验证TM具有均匀的粒径和完整的包覆结构。结果表明,TM可通过物理冷却、化学抑制和气体隔离的协同作用有效抑制LIBs的热失控(TR)。具体而言,单节LIB的TR峰值温度降低了14.0℃,升温速率降低了0.17℃/s。此外,TM成功阻断了TR的传播,从而在双LIB模块测试中防止了其蔓延。该创新系统通过利用三元芯的互补功能克服了单组分灭火剂的局限性,无需外部系统即可实现自主TR抑制。此外,TM的设计集成了精确的热响应性、环境友好性和成本效益,为下一代LIBs提供了变革性的安全解决方案。