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Enhanced High-Temperature Capacitive Performance of a Bilayer-Structured Composite Film Employing a Charge Blocking Layer.
Liu, Xue-Jie; Zhong, Shao-Long; Zheng, Ming-Sheng; Dang, Zhi-Min; Chen, George; Zha, Jun-Wei.
Afiliação
  • Liu XJ; School of Chemistry and Biological Engineering, University of Science & Technology Beijing, Beijing100083, P. R. China.
  • Zhong SL; State Key Laboratory of Power System, Department of Electrical Engineering, Tsinghua University, Beijing100084, P. R. China.
  • Zheng MS; School of Chemistry and Biological Engineering, University of Science & Technology Beijing, Beijing100083, P. R. China.
  • Dang ZM; State Key Laboratory of Power System, Department of Electrical Engineering, Tsinghua University, Beijing100084, P. R. China.
  • Chen G; Department of Electronics and Computer Science, University of Southampton, SouthamptonSO17 1BJ, U.K.
  • Zha JW; School of Chemistry and Biological Engineering, University of Science & Technology Beijing, Beijing100083, P. R. China.
ACS Appl Mater Interfaces ; 15(1): 1105-1114, 2023 Jan 11.
Article em En | MEDLINE | ID: mdl-36584331
ABSTRACT
The great development potential of polymer dielectric capacitors in harsh environments urgently requires enhancing capacitive performance at high temperatures. However, the exponentially increased conduction loss at high temperature and high field results in a drastic drop in energy density and charge-discharge efficiency. Here, a bilayer-structured polyimide (PI) composite film containing a wide-band gap inorganic layer as a charge blocking layer is designed. The inorganic layer improves the charge trapping ability and regulates the charge mobility at the electrode/dielectric interface. The charge injection mechanism in the interface-optimized PI/boron nitride nanosheet (BNNS) composite films is investigated by finite element simulation, and the effect of the BNNS layer on high temperature conduction is further understood. An appropriate thickness of the charge blocking layer establishes an effective energy barrier. Therefore, the composite films exhibit significantly suppressed conduction loss and excellent capacitive performance at a high temperature. A high energy density of 4.37 J cm-3 with efficiency of 92% is obtained at 200 °C and 500 MV m-1, which is superior to reported high-temperature dielectric polymers and their composite films. This work provides a promising approach to improve the energy storage performance of polymer materials at high temperatures.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article