Enhanced dielectric constant and energy density in a BaTiO3/polymer-matrix composite sponge

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Abstract

Polymer-matrix dielectric composites are promising for use in electrostatic energy storage devices due to the ultra-fast charge–discharge speed and the long service life. Here we report a strategy for designing BaTiO3 sponge polymer composites for energy storage. BaTiO3 sponges with tunable porosities are prepared from polymethyl methacrylate micro-sphere arrays. Liquid epoxy completely fills the pores in a BaTiO3 sponge during vacuum de-foaming, forming a solid composite. The resulting composites possess a maximum dielectric constant of εr~332 and εr/εm~85, compared to εr~38 in a sample filled with BaTiO3 NPs, at 1 kHz. The composites also possess, at 100 kV cm−1, a high discharge energy density of Ud~105 × 10−3 J cm−3 and Ud/Um~51, and electric displacement of 3.2 μC cm−2, compared with those utilizing traditional strategies at low electric fields. Finite element simulation reveals the enhanced energy density is due to a high local electric displacement in composites.

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Jian, G., Jiao, Y., Meng, Q., Wei, Z., Zhang, J., Yan, C., … Wong, C. P. (2020). Enhanced dielectric constant and energy density in a BaTiO3/polymer-matrix composite sponge. Communications Materials, 1(1). https://doi.org/10.1038/s43246-020-00092-0

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