Polyimide composites crosslinked by aromatic molecules for high-temperature capacitive energy storage

Feng Wang, Hao Wang, Xiaoming Shi, Chunli Diao, Chaolong Li, Weikun Li, Xu Liu, Haiwu Zheng*, Houbing Huang, Xiaoguang Li

*此作品的通讯作者

科研成果: 期刊稿件文章同行评审

10 引用 (Scopus)

摘要

High-temperature polymer-based dielectric capacitors are crucial for application in electronic power systems. However, the storage performance of conventional dielectrics polymer dramatically deteriorates due to the thermal breakdown under concurrent high temperatures and electric fields, and there are hardly reports on the causes of thermal breakdown from the aspects of the high-temperature conduction loss and Joule heat dissipation. Herein, a combined strategy of crosslinking and compositing for polyimide-based composites is proposed, which minimizes the thermal breakdown by significantly inhibiting the high-temperature conduction loss and enhancing the thermal conductivity. Furthermore, the rationale of the strategy was theoretically and experimentally verified from multiple perspectives. The charge-trapping effect is directly observed by Kelvin probe force microscopy probed (KPFM) with nano-level resolution and quantitatively by thermally stimulated depolarization current measurements, indicating that the crosslinking network introduces local deep traps and effectively suppresses the charge transport. The thermal conductivity of the composites inhibits the high-temperature thermal breakdown, which is confirmed by phase-field simulations. Consequently, the optimized composites possess an ultra-high discharge energy density (Ud) of 5.45 J/cm3 and 3.54 J/cm3 with a charge–discharge efficiency (η) of 80 % at 150 and 200 °C, respectively, which outperforms the reported polyimide-based dielectric composites. This work provides a scalable direction for high-temperature polymer-based capacitors with excellent performance.

源语言英语
文章编号149972
期刊Chemical Engineering Journal
485
DOI
出版状态已出版 - 1 4月 2024

指纹

探究 'Polyimide composites crosslinked by aromatic molecules for high-temperature capacitive energy storage' 的科研主题。它们共同构成独一无二的指纹。

引用此