4.6 Article

Chemical adsorption on 2D dielectric nanosheets for matrix free nanocomposites with ultrahigh electrical energy storage

Journal

SCIENCE BULLETIN
Volume 67, Issue 6, Pages 609-618

Publisher

ELSEVIER
DOI: 10.1016/j.scib.2021.10.011

Keywords

Boron nitride nanosheets; Electron barrier layer; Relaxor ferroelectric polymers; Nanocomposites; Electrical energy storage

Funding

  1. National Natural Science Foundation of China [52003153, 51877132, 52002300]
  2. Program of Shanghai Academic Research Leader [21XD1401600]
  3. State Key Laboratory of Electrical Insulation and Power Equipment [EIPE20203, EIPE21206]
  4. Major Research Plan of National Natural Science Foundation of China [92066103]

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By chemically adsorbing an electron barrier layer, the mechanical modulus, thermal conductivity, and electric energy storage capacity of relaxor ferroelectric polymers have been effectively enhanced.
Relaxor ferroelectric polymers display great potential in capacitor dielectric applications because of their excellent flexibility, light weight, and high dielectric constant. However, their electrical energy storage capacity is limited by their high conduction losses and low dielectric strength, which primarily originates from the impact-ionization-induced electron multiplication, low mechanical modulus, and low thermal conductivity of the dielectric polymers. Here a matrix free strategy is developed to effectively suppress electron multiplication effects and to enhance mechanical modulus and thermal conductivity of a dielectric polymer, which involves the chemical adsorption of an electron barrier layer on boron nitride nanosheet surfaces by chemically adsorbing an amino-containing polymer. A dramatic decrease of leakage current (from 2.4 x 10(-6) to 1.1 x 10(-7) A cm(-2) at 100 MV m(-1)) and a substantial increase of breakdown strength (from 340 to 742 MV m(-1)) were achieved in the nanocompostes, which result in a remarkable increase of discharge energy density (from 5.2 to 31.8 J cm(-3)). Moreover, the dielectric strength of the nanocomposites suffering an electrical breakdown could be restored to 88% of the original value. This study demonstrates a rational design for fabricating dielectric polymer nanocomposites with greatly enhanced electric energy storage capacity. (C) 2021 Science China Press. Published by Elsevier B.V. and Science China Press. All rights reserved.

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