Surface-coated polymer nanocomposites containing z-aligned high-k nanowires as high-performance dielectrics at elevated temperatures

被引:6
作者
Cheng, Sang [1 ]
Yang, Mingcong [1 ]
Fu, Jing [1 ]
Wang, Rui [1 ]
He, Jinliang [1 ]
Li, Qi [1 ]
机构
[1] Tsinghua Univ, Dept Elect Engn, State Key Lab Power Syst, Beijing, Peoples R China
关键词
dielectric materials; high-temperature electronics; nanocomposites; polymer films; ENHANCED ENERGY DENSITY; FAST DISCHARGE; BATIO3; POLYPROPYLENE; PERMITTIVITY; CAPACITORS; FIELD;
D O I
10.1049/nde2.12060
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Recently, demands for high-performance polymer film capacitors at elevated temperatures have become more urgent. High dielectric constant is essential for dielectric materials to achieve substantial energy density at relatively low electric fields, which is of great significance to practical applications, while improving the permittivity of high-temperature polymer dielectrics without a remarkable deterioration in other electrical properties still remains a challenge. Here, a polymer nanocomposite containing z-aligned high-k nanowires sandwiched by e-beam evaporation deposited Al2O3 films was developed based on the optimal structure proposed by the phase-field simulation. It is found that z-aligned nanowires are more effective in promoting the dielectric constant than random-aligned ones, and a large increase in dielectric constant is observed at relatively low content of nanofillers. Outer insulating layers effectively suppress the electric conduction and improve the breakdown strength. Consequently, the nanocomposite with only 1 volume fraction of z-aligned nanowires exhibits a breakdown strength, electrical resistance, and charge-discharge efficiency as high as neat PEI, but more than twice the discharged energy density than it at 150 & DEG;C. This study realises the optimal structure predicted by simulation in experiment, obtaining high-permittivity, high-temperature nanocomposites at no expense of other electrical properties, and making it possible to achieve high discharged energy density at relatively low electric fields.
引用
收藏
页码:237 / 245
页数:9
相关论文
共 31 条
[11]   The changing automotive environment: High-temperature electronics [J].
Johnson, RW ;
Evans, JL ;
Jacobsen, P ;
Thompson, JRR ;
Christopher, M .
IEEE TRANSACTIONS ON ELECTRONICS PACKAGING MANUFACTURING, 2004, 27 (03) :164-176
[12]  
Li Q, 2018, ANNU REV MATER RES, V48, P219, DOI [10.1146/annurev-matsci-070317124435, 10.1146/annurev-matsci-070317-124435]
[13]   Flexible high-temperature dielectric materials from polymer nanocomposites [J].
Li, Qi ;
Chen, Lei ;
Gadinski, Matthew R. ;
Zhang, Shihai ;
Zhang, Guangzu ;
Li, Haoyu ;
Haque, Aman ;
Chen, Long-Qing ;
Jackson, Thomas N. ;
Wang, Qing .
NATURE, 2015, 523 (7562) :576-+
[14]   High Energy and Power Density Capacitors from Solution-Processed Ternary Ferroelectric Polymer Nanocomposites [J].
Li, Qi ;
Han, Kuo ;
Gadinski, Matthew Robert ;
Zhang, Guangzu ;
Wang, Qing .
ADVANCED MATERIALS, 2014, 26 (36) :6244-6249
[15]   Ternary PVDF-based terpolymer nanocomposites with enhanced energy density and high power density [J].
Liu, Feihua ;
Li, Qi ;
Li, Zeyu ;
Dong, Lijie ;
Xiong, Chuanxi ;
Wang, Qing .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2018, 109 :597-603
[16]   High-Energy-Density Dielectric Polymer Nanocomposites with Trilayered Architecture [J].
Liu, Feihua ;
Li, Qi ;
Cui, Jin ;
Li, Zeyu ;
Yang, Guang ;
Liu, Yang ;
Dong, Lijie ;
Xiong, Chuanxi ;
Wang, Hong ;
Wang, Qing .
ADVANCED FUNCTIONAL MATERIALS, 2017, 27 (20)
[17]   Physical Properties of Composites Near Percolation [J].
Nan, C. -W. ;
Shen, Y. ;
Ma, Jing .
ANNUAL REVIEW OF MATERIALS RESEARCH, VOL 40, 2010, 40 :131-151
[18]   Fast discharge and high energy density of nanocomposite capacitors using Ba0.6Sr0.4TiO3 nanofibers [J].
Pan, Z. B. ;
Yao, L. M. ;
Zhai, J. W. ;
Liu, S. H. ;
Yang, K. ;
Wang, H. T. ;
Liu, J. H. .
CERAMICS INTERNATIONAL, 2016, 42 (13) :14667-14674
[19]   Ultrafast Discharge and Enhanced Energy Density of Polymer Nanocomposites Loaded with 0.5(Ba0.7Ca0.3)TiO3-0.5Ba(Zr0.2Ti0.8)O3 One-Dimensional Nanofibers [J].
Pan, Zhongbin ;
Yao, Lingmin ;
Zhai, Jiwei ;
Wang, Haitao ;
Shen, Bo .
ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (16) :14337-14346
[20]  
Qi Tan, 2006, Transactions of the Institute of Electrical Engineers of Japan, Part A, V126-A, P1153, DOI 10.1541/ieejfms.126.1153