Słojewska Magdalena, Czerwiński Arkadiusz, Kaczorowski Marcin, Zygadło-Monikowska Ewa
Faculty of Chemistry, Warsaw University of Technology, Noakowskiego 3, 00-664 Warsaw, Poland.
Molecules. 2024 Aug 9;29(16):3782. doi: 10.3390/molecules29163782.
The safety concerns associated with current lithium-ion batteries are a significant drawback. A short-circuit within the battery's internal components, such as those caused by a car accident, can lead to ignition or even explosion. To address this issue, a polymer shear thickening electrolyte, free from flammable solvents, has been developed. It comprises a star-shaped oligomer derived from a trimethylolpropane (TMP) core and polyether chains, along with the inclusion of 20 wt.% nanosilica. Notably, the star-shaped oligomer serves a dual function as both the solvent for the lithium salt and the continuous phase of the shear thickening fluid. The obtained electrolytes exhibit an ionic conductivity of the order of 10 S cm at 20 °C and 10 S cm at 80 °C, with a high Li transference number (t = 0.79). A nearly thirtyfold increase in viscosity to a value of 1187 Pa s at 25 °C and a critical shear rate of 2 s were achieved. During impact, this electrolyte could enhance cell safety by preventing electrode short-circuiting.
当前锂离子电池存在的安全问题是一个重大缺陷。电池内部组件发生短路,例如由汽车事故导致的短路,可能引发着火甚至爆炸。为解决这一问题,已研发出一种不含易燃溶剂的聚合物剪切增稠电解质。它由源自三羟甲基丙烷(TMP)核心和聚醚链的星形低聚物以及20 wt.%的纳米二氧化硅组成。值得注意的是,星形低聚物兼具锂盐溶剂和剪切增稠流体连续相的双重功能。所制得的电解质在20℃时离子电导率约为10 S cm,在80℃时为10 S cm,锂迁移数较高(t = 0.79)。在25℃时粘度增加近30倍,达到1187 Pa s,临界剪切速率为2 s。在受到冲击时,这种电解质可通过防止电极短路来提高电池安全性。