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      Novel barium titanate based capacitors with high energy density and fast discharge performance

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          Abstract

          Novel BaTiO 3-based capacitors show promising energy storage performance with high breakdown strength and discharge energy density and outstanding energy efficiency.

          Abstract

          Recently, dielectric capacitors have attracted much attention due to their high power density based on fast charge–discharge capability. However, their energy storage applications are limited by their low discharge energy densities. In this work, we designed novel lead-free relaxor-ferroelectric 0.88BaTiO 3–0.12Bi(Li 0.5Nb 0.5)O 3 (0.88BT–0.12BLN) ceramics with high breakdown strength and high discharge energy density. The 0.88BT–0.12BLN ceramics were prepared by a conventional solid state reaction method. Optimal energy storage properties were obtained in 0.88BT–0.12BLN ceramics sintered at 1220 °C with an impressive discharge energy density of 2.032 J cm −3 and a charge–discharge efficiency of beyond 88% at 270 kV cm −1. The energy storage properties of the 0.88BT–0.12BLN also displayed good thermal stability from 20 to 120 °C at an electric field of 150 kV cm −1. Moreover, the discharge speed behavior was investigated by using pulsed current. The pulsed discharge current waveforms showed that all the samples have fast discharge times (less than 0.5 μs) under different electric fields. This work significantly increases the intrinsic breakdown strength and discharge energy density of BaTiO 3-based materials with high charge–discharge efficiency for high power energy storage devices.

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          Dielectric polarizabilities of ions in oxides and fluorides

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            Graphene-wrapped ZnO hollow spheres with enhanced electromagnetic wave absorption properties

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              Solution-processed ferroelectric terpolymer nanocomposites with high breakdown strength and energy density utilizing boron nitride nanosheets

              Ferroelectric polymer nanocomposites with boron nitride nanosheets exhibit greatly improved energy densities and higher charge–discharge efficiencies. The development of high-performance capacitive energy storage devices is of critical importance to address an ever-increasing electricity need. The energy density of a film capacitor is determined by the dielectric constant and breakdown strength of dielectric materials. With the highest dielectric constant among the known polymers, poly(vinylidene fluoride)-based ferroelectric terpolymers are of great potential for high energy density capacitors. However, their energy storage capability has long been limited by the relatively low breakdown strength. Here we demonstrate remarkable improvements in the energy density and charge–discharge efficiency of the ferroelectric terpolymers upon the incorporation of ultra-thin boron nitride nanosheets (BNNSs). It is found that BNNSs function as a robust scaffold to hamper the onset of electromechanical failure and simultaneously as an efficient insulating barrier against electrical conduction in the resulting polymer nanocomposites, resulting in greatly enhanced breakdown strength. Of particular note is the improved thermal conductivity of the terpolymer with the introduction of BNNSs; this is anticipated to benefit the stability and lifetime of polymer capacitors. This work establishes a facile, yet efficient approach to solution-processable dielectric materials with performance comparable or even superior to those achieved in the traditionally melt-extruded ultra-thin films.
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                Author and article information

                Journal
                JMCAET
                Journal of Materials Chemistry A
                J. Mater. Chem. A
                Royal Society of Chemistry (RSC)
                2050-7488
                2050-7496
                2017
                2017
                : 5
                : 37
                : 19607-19612
                Affiliations
                [1 ]Electronic Materials Research Laboratory
                [2 ]Key Laboratory of the Ministry of Education
                [3 ]International Center for Dielectric Research
                [4 ]Xi'an Jiaotong University
                [5 ]Xi'an 710049
                [6 ]Micro-optoelectronic Systems Laboratories
                [7 ]Xi'an Technological University
                [8 ]Xi'an 710032
                [9 ]China
                [10 ]Department of Materials Science and Engineering
                Article
                10.1039/C7TA05392D
                e3fb1a4d-5bd5-4a33-b00a-21ae9f01d514
                © 2017
                History

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