Scalable all-organic polymer dielectrics for high-temperature film capacitors with construction of deep-trap level and cross-linking network

被引:1
作者
Wang, Qitong [1 ]
Wang, Tianze [1 ]
Chi, Hui [1 ]
Zhao, Danying [1 ]
Yu, Lixuan [1 ]
Jiang, Zhenhua [1 ]
Zhang, Yunhe [1 ]
机构
[1] Jilin Univ, Coll Chem, Changchun 130012, Peoples R China
关键词
High temperature energy storage; Polymer dielectric; Trap energy levels; Cross-linking; ENERGY-STORAGE; DENSITY;
D O I
10.1016/j.cej.2025.160204
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Polymer dielectrics are key component for energy storage capacitors in modern electronical equipment with their high breakdown strength, great reliability and processable for large-scale manufacture. However, deteriorated capacitive performance due to dramatically increased conductive loss at elevated temperature fails polymer dielectrics to meet the rising demand for harsh working environment. Herein, a novel thermosetting polymer benzoxazines (BZ) is selected, and a serial of polyetherimide (PEI)/benzoxazines (BZ) dielectric films designed with rich traps are prepared for high temperature capacitive application. The density functional theory (DFT) simulations have revealed that energy barrier can be formed based on the difference in energy band structure of BZ and PEI. Constructed concurrently with dense cross-linking network formed by the polymerization of benzoxazines monomers, PEI/BZ composites can exhibits great capability in restraining the charge transport, suppressing the leakage current density, therefore endowing a significant improvement in energy storage density at elevated temperature. At 150 degrees C, the PEI/5 wt% BZ composite processes energy storage density (Ue) as high as 4.64 J cm-3 with charge-discharge efficiency of 92 % at 550 MV m-1, representing a 2.3-fold increase compared to pure PEI, and capacitive reliability of 50,000 cycles at 400 MV m-1. Notably, integrated with the controllability of BZ monomer, straightforward film fabrication and the over-all low cost, this design strategy have shed a bright light in the industrial manufacture of high-temperature capacitive materials with superior energy storage performance.
引用
收藏
页数:9
相关论文
共 70 条
[1]   Tuning Nanofillers in In Situ Prepared Polyimide Nanocomposites for High-Temperature Capacitive Energy Storage [J].
Ai, Ding ;
Li, He ;
Zhou, Yao ;
Ren, Lulu ;
Han, Zhubing ;
Yao, Bin ;
Zhou, Wei ;
Zhao, Ling ;
Xu, Jianmei ;
Wang, Qing .
ADVANCED ENERGY MATERIALS, 2020, 10 (16)
[2]   Significant enhancement of thermal conductivity in segregated (GnPs&MWCNTs)@Polybenzoxazine/(Polyether ether ketone) -based composites with excellent electromagnetic shielding [J].
Chen, Rui ;
He, Qingxia ;
Li, Xue ;
Wen, Fengyu ;
Cheng, Lin ;
Li, Lei ;
He, Yashu ;
Liu, Xiaoyan ;
Mu, Jianxin .
CHEMICAL ENGINEERING JOURNAL, 2022, 431
[3]   Asymmetric alicyclic amine-polyether amine molecular chain structure for improved energy storage density of high-temperature crosslinked polymer capacitor [J].
Chen, Siyu ;
Meng, Guodong ;
Kong, Bo ;
Xiao, Bing ;
Wang, Zhengdong ;
Jing, Ziang ;
Gao, Yushuan ;
Wu, Guanglei ;
Wang, Hong ;
Cheng, Yonghong .
CHEMICAL ENGINEERING JOURNAL, 2020, 387
[4]   Polymer dielectrics sandwiched by medium-dielectric-constant nanoscale deposition layers for high-temperature capacitive energy storage [J].
Cheng, Sang ;
Zhou, Yao ;
Li, Yushu ;
Yuan, Chao ;
Yang, Mingcong ;
Fu, Jing ;
Hu, Jun ;
He, Jinliang ;
Li, Qi .
ENERGY STORAGE MATERIALS, 2021, 42 :445-453
[5]   Structures and performance of a polybenzoxazine with high heat resistance and high-frequency low-dielectric properties [J].
Cui, Yongxi ;
Xu, Yifen ;
Song, Jing ;
Liang, Hongrui ;
Yan, Hui ;
Zhang, Congyun ;
Wang, Zhi .
POLYMER, 2024, 313
[6]   Scalable Polyimide-Poly(Amic Acid) Copolymer Based Nanocomposites for High-Temperature Capacitive Energy Storage [J].
Dai, Zhizhan ;
Bao, Zhiwei ;
Ding, Song ;
Liu, Chuanchuan ;
Sun, Haoyang ;
Wang, He ;
Zhou, Xiang ;
Wang, Yuchen ;
Yin, Yuewei ;
Li, Xiaoguang .
ADVANCED MATERIALS, 2022, 34 (05)
[7]   Ultrahigh Dielectric Energy Density and Efficiency in PEI-Based Gradient Layered Polymer Nanocomposite [J].
Dang, Zhener ;
Lin, Ying ;
Yuan, Qibin ;
Li, Xinyi ;
Zhang, Yongjing ;
Ma, Yanlong ;
Wang, Yi ;
Yang, Qiaoyu ;
Wang, Yifei ;
Yang, Haibo .
ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (41)
[8]   Flexible polyolefin dielectric by strategic design of organic modules for harsh condition electrification [J].
Deshmukh, Ajinkya A. ;
Wu, Chao ;
Yassin, Omer ;
Mishra, Ankit ;
Chen, Lihua ;
Alamri, Abdullah ;
Li, Zongze ;
Zhou, Jierui ;
Mutlu, Zeynep ;
Sotzing, Michael ;
Rajak, Pankaj ;
Shukla, Stuti ;
Vellek, John ;
Baferani, Mohamadreza Arab ;
Cakmak, Mukerrem ;
Vashishta, Priya ;
Ramprasad, Rampi ;
Cao, Yang ;
Sotzing, Gregory .
ENERGY & ENVIRONMENTAL SCIENCE, 2022, 15 (03) :1307-1314
[9]   Ultraviolet-Irradiated All-Organic Nanocomposites with Polymer Dots for High-Temperature Capacitive Energy Storage [J].
Ding, Jiale ;
Zhou, Yao ;
Xu, Wenhan ;
Yang, Fan ;
Zhao, Danying ;
Zhang, Yunhe ;
Jiang, Zhenhua ;
Wang, Qing .
NANO-MICRO LETTERS, 2024, 16 (01)
[10]   All-organic nanocomposite dielectrics contained with polymer dots for high-temperature capacitive energy storage [J].
Ding, Jiale ;
Xu, Wenhan ;
Zhu, Xuanbo ;
Liu, Zheng ;
Zhang, Yunhe ;
Jiang, Zhenhua .
NANO RESEARCH, 2023, 16 (07) :10183-10190