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Polyamideimide dielectric with montmorillonite nanosheets coating for high-temperature energy storage

  • Yifei Wang
  • , Zongze Li
  • , Chao Wu
  • , Peinan Zhou
  • , Jierui Zhou
  • , Jindong Huo
  • , Kerry Davis
  • , Antigoni C. Konstantinou
  • , Hiep Nguyen
  • , Yang Cao
  • University of Connecticut

Research output: Contribution to journalArticlepeer-review

65 Scopus citations

Abstract

To meet the ever-increasing demand for electric power storage and conversion under harsh environment, polymer dielectrics, as the functional component in electrostatic capacitors, are required to serve at high temperatures. However, it is challenging to maintain favorable electrical insulation in polymer dielectrics with the temperature rise because of the high conduction loss at elevated temperature, which will lead to reduced breakdown strength, energy density, and service life. Here, a versatile surface engineering method is presented to enhance the high-temperature electrical insulation and energy storage performance of polymer dielectric via dip-coating montmorillonite (MMT) nanosheets. At 150 °C, a significantly enhanced breakdown strength of 551MV/m is achieved in a MMT coated polyamideimide (PAI) with optimized coating thickness and MMT content, resulting in a high energy density of 2.9 J cm−3 and a charge-discharge efficiency >80% that outperform existing high-temperature polymers and polyimide-based composites. Finite element simulation demonstrates that this superior performance is attributed to the anisotropic electrical properties of MMT nanosheets, which not only blocks charges injected from electrodes but also regulates the transport of charges to dissipate along the in-plane direction. This work offers a versatile and scalable approach for enabling high-temperature electrostatic energy storage and high-temperature insulation of a wide range of polymer dielectrics.

Original languageEnglish
Article number135430
JournalChemical Engineering Journal
Volume437
DOIs
StatePublished - 1 Jun 2022
Externally publishedYes

Keywords

  • Dielectric
  • Electrical energy storage
  • High temperature
  • Nanocoating
  • Polymer

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