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Published August 2020 | Version v1
Journal article

Enhanced dielectric properties and relaxation behavior in double perovskite-polymer-based flexible 0–3 nanocomposite films

  • 1. Universidad Tecnológica Metropolitana. Departamento de Ingeniería Mecánica, Facultad de Ingeniería (Chile)
  • 2. Indian Institute of Technology. Department of Physics (India)
  • 3. University of Atacama. Institute of Scientific and Technological Research (IDICTEC) (Chile)
  • 4. Defence Institute of Advanced Technology. Department of Metallurgical and Materials Engineering (India)
  • 5. University of Concepcion. Technological Development Unit (UDT) (Chile)
  • 6. University of Concepción. Advanced Ceramics and Nanotechnology Laboratory, Department of Materials Engineering, Faculty of Engineering (Chile)

Description

The double perovskite nanostructures were prepared by using hydrothermal route to obtain single-phase rhombohedral structure. The flexible magneto-dielectric nanocomposite films with double perovskite La2NiMnO6 (LNMO) nanostructures and poly(vinylidene fluoride-co-hexafluoropropylene) (PVDF-HFP) polymer were fabricated by solution casting method. The structural, thermal, and dielectric properties of the developed double perovskite nanostructures and their combination with (PVDF-HFP) as nanocomposite films were investigated. The fabricated nanocomposite films demonstrated an improvement in the crystalline phase with the increase in the loading of La2NiMnO6 (0–40 wt%). The nanocomposite film with 30 wt% of LNMO exhibited higher dielectric permittivity (> 40) alongside with a dielectric loss of as low as 0.6 at room temperature and thereafter it reached percolation threshold. The dielectric studies also revealed an efficient charge separation and a strong interfacial polarization at the interfaces by facilitating the charge accumulation in the nanocomposites than that of the pure polymer film. The thermally activated relaxation behavior in the films followed the Arrhenius law and the obtained activation energies were found to be ~ 1.12 eV.

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Materials Science. Materials in Electronics
Journal Volume
31
Journal Issue
16
Journal Page Range
p. 13477-13486
ISSN
0957-4522
CODEN
JSMEEV

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Copyright (c) 2020 © Springer Science+Business Media, LLC, part of Springer Nature 2020