High dielectric CsPbBr3/rGO/polyimide composite prepared via in-situ conversion of fillers

被引:0
作者
Zewei Zhu
Yingbo Liu
Mengle Kong
Junqi Ge
Zhaoyu Hu
Xuehui Peng
Wenhui Xu
Yichun Ding
Haoqing Hou
Xinwen Peng
机构
[1] Jiangxi Normal University,Department of Chemistry and Chemical Engineering, Nanofiber Engineering Centre of Jiangxi Province
[2] Jiangxi University of Traditional Chinese Medicine,Department of Basic Chemistry, School of Pharmacy
[3] Chinese Academy of Sciences,Fujian Institute of Research on the Structure of Matter
来源
Journal of Materials Science: Materials in Electronics | 2021年 / 32卷
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摘要
High dielectric (high-k) polymer matrix composites (PMCs) have attracted much attention owing to their moderate dielectric property, good thermal stability, and excellent mechanical flexibility, as well as facile processability, light weight, and low cost. Herein, we report an in-situ synthesis strategy to fabricate high-performance high-k PMCs. A novel perovskite CsPbBr3/rGO/polyimide composite is fabricated by in-situ polymerization of poly(amic acid) (PAA) followed by thermal imidization, in-situ chemical reduction of graphene oxide (GO), and in-situ crystallization of CsPbBr3 nanoparticles. The fillers are uniformly dispersed in the polyimide (PI) matrix due to the multiple in-situ conversion processes, which form numerous micro-capacitors to enhance the dielectric permittivity. Attributing to the synergetic effect between rGO and CsPbBr3 nanocrystals, the CsPbBr3/rGO/PI composite showed a high dielectric permittivity up to 213, a high energy storage density of up to 5.20 J cm−3, and a dielectric loss less than 0.35. Besides, the thermal stability of the composites is enhanced (5% weight loss temperature (T5%) > 523 °C), and the mechanical strength is well retained under a relatively low filling amount of fillers (10 wt% CsPbBr3). Therefore, the as-fabricated CsPbBr3/rGO/PI composites would be promising for applications in energy storage polymer thin-film capacitors, and this research also opens a new avenue to fabricate high-k PMCs with good comprehensive properties.
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页码:12414 / 12423
页数:9
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共 261 条
[1]  
Li Q(2015)Flexible high-temperature dielectric materials from polymer nanocomposites Nature 523 576-undefined
[2]  
Chen L(2016)Advanced polymeric dielectrics for high energy density applications Prog. Mater. Sci. 83 236-undefined
[3]  
Gadinski MR(2016)Sandwich-structured polymer nanocomposites with high energy density and great charge–discharge efficiency at elevated temperatures Proc. Natl. Acad. Sci. 113 9995-undefined
[4]  
Huan TD(2015)Core–shell structured high- Adv. Mater. 27 546-undefined
[5]  
Boggs S(2010) polymer nanocomposites for energy storage and dielectric applications Chem. Rev. 110 205-undefined
[6]  
Teyssedre G(2012)High- Prog. Mater. Sci. 57 660-undefined
[7]  
Li Q(2015) organic, inorganic, and hybrid dielectrics for low-voltage organic field-effect transistors Chem. Commun. 51 10127-undefined
[8]  
Liu F(2016)Fundamentals, processes and applications of high-permittivity polymer–matrix composites ACS Appl. Mater. Interfaces. 8 7966-undefined
[9]  
Yang T(2017)Polyacrylonitrile-derived polyconjugated ladder structures for high performance all-organic dielectric materials Nano Energy 32 73-undefined
[10]  
Huang X(2014)Directed self-assembly of block copolymers for high breakdown strength polymer film capacitors J. Appl. Polym. Sci. 131 40828-undefined