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      Ultrahigh discharge efficiency and improved energy density in rationally designed bilayer polyetherimide–BaTiO3/P(VDF-HFP) composites

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          Abstract

          Ultrahigh efficiencies over 95% and high energy densities are concurrently achieved in rationally designed bilayer polyetherimide–BaTiO 3/P(VDF-HFP) composites.

          Abstract

          Polymer dielectric composites are of great interest as film capacitors that are widely used in pulsed power systems. For a long time, huge efforts have been devoted to achieving energy densities as high as possible to satisfy the miniaturization and high integration of electronic devices. However, the discharge efficiency which is particularly crucial to practical applications has gained little attention. With the target of achieving concurrently improved energy density and efficiency, a class of rationally designed bilayer composites consisting of a pure polyetherimide layer and a BaTiO 3/P(VDF-HFP) composite layer were prepared. Interestingly, the bilayer composites exhibit ultrahigh discharge efficiencies η (>95%) under external electric fields up to 400 kV mm −1 which are much higher than most of the so far reported results ( η < 80%). Meanwhile, a low loss (tan δ < 0.05 @ 10 kHz) comparable to that of the pure polyetherimide is obtained. In addition, the bilayer composites show impressive improvements in breakdown strengths E b, i.e., 285%, 363%, 366% and 567% for composites with 5 vol%, 10 vol%, 20 vol% and 40 vol% BaTiO 3, compared to their single layer counterparts, resulting in obviously improved energy densities U d. In particular, the bilayer composite with 10 vol% BaTiO 3 displays the most prominent comprehensive energy storage performance, i.e., η ∼ 96.8% @ 450 kV mm −1, U d ∼ 6 J cm −3 @ 450 kV mm −1, tan δ ∼ 0.025 @ 10 kHz, and E b ∼ 483.18 kV mm −1. The ultrahigh discharge efficiencies and high energy densities, along with low loss and breakdown strengths, make these bilayer composites ideal candidates for high-performance dielectric energy-storage capacitors.

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          Author and article information

          Contributors
          Journal
          JMCAET
          Journal of Materials Chemistry A
          J. Mater. Chem. A
          Royal Society of Chemistry (RSC)
          2050-7488
          2050-7496
          March 17 2020
          2020
          : 8
          : 11
          : 5750-5757
          Affiliations
          [1 ]School of Materials Science and Engineering
          [2 ]Ocean University of China
          [3 ]Qingdao 266100
          [4 ]P. R. China
          [5 ]Key Laboratory of Microgravity (National Microgravity Laboratory)
          [6 ]Institute of Mechanics
          [7 ]Chinese Academy of Sciences
          [8 ]Beijing 100190
          [9 ]China
          [10 ]Georgia Institute of Technology
          [11 ]Atlanta
          [12 ]USA
          [13 ]Institute of Marine Materials Science and Engineering
          [14 ]Shanghai Maritime University
          [15 ]Shanghai 201306
          Article
          10.1039/D0TA00903B
          177169b9-78bf-4a66-8930-5d66512e84ef
          © 2020

          http://rsc.li/journals-terms-of-use

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