Sandwich-structured polymer dielectric composite films for improving breakdown strength and energy density at high temperature

  • Tianran Zhang
  • , Qinzhao Sun
  • , Fang Kang
  • , Zepeng Wang
  • , Rong Xue
  • , Jiping Wang
  • , Lixue Zhang

Research output: Contribution to journalArticlepeer-review

39 Scopus citations

Abstract

Polymer dielectric capacitor have attracted much attention in the field of electronic power systems recently due to high power density and high breakdown strength. However, with the development of miniaturization and integration, further demands have been set on the higher energy storage density as well as better temperature resistance for dielectric polymers. Up to now, hierarchical structure provides an effective way to meet these requirements. Herein, we report a sandwich-structured all-organic composite via inserting polymethyl methacrylate/poly(vinylidene fluoride) (PMMA/PVDF) blend layer into polyetherimide layers. Increasing temperature increases the permittivity of the middle layer and the addition of PMMA makes the permittivity increase faster with temperature than pure PVDF middle layer. The capacitor series model and finite element simulation confirmed that the change of the middle layer permittivity realized the electric field redistribution to self-adapt to the temperature, preventing premature breakdown at elevated temperature. At 100 °C, optimized composite exhibits a high breakdown strength of 486.05 MV/m along with high polarization. Eventually, a high discharge energy density of 8.65 J/cm3 is obtained, which is 229.44% of pure PEI. The high polarization at high temperature was realized by utilizing the permittivity of PMMA/PVDF rising with temperature, thereby increasing the energy density at elevated temperature.

Original languageEnglish
Article number109596
JournalComposites Science and Technology
Volume227
DOIs
StatePublished - 18 Aug 2022

Keywords

  • All-organic composites
  • Dielectric energy storage
  • Electric field distribution
  • High temperature
  • Sandwich-structured materials

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