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Published May 2020 | Version v1
Journal article

Tweaking the red emission, magneto, and dielectrical properties of perovskite type-LaFeO3 in the presence of Co substitution

  • 1. Guindy, Anna University. Department of Physics, College of Engineering (India)
  • 2. United Arab Emirates University. Department of Physics, College of Science (United Arab Emirates)
  • 3. University of Madras, Tamil Nadu. Department of Materials Science (India)
  • 4. University of Madras. Department of Nuclear Physics (India)
  • 5. SRM Institute of Science and Technology, Ramapuram Campus. Department of Physics (India)

Description

Perovskite-structured LaCoxFe1−xO3 (x = 0.05, 0.1, 0.15, 0.2, 0.25) ceramic powders were produced via traditional solid-state reaction method. X-ray diffraction pattern, infrared spectra, and Raman have proved the formation of lanthanum perovskite. The incorporation of Co atoms in host lattice and the distortion of atoms were analyzed using Rietveld refinement method. The microstructure, nominal chemical composition, and uniform distribution of the particles and elements within the LaCoxFe1−xO3 powders were examined by SEM–EDS and elemental mapping. The energy gap (Eg) value sof ceramic powders was estimated using UV–Vis spectroscopy, where the Eg values are in the range of 3.75 eV and 3.92 eV. The interesting red emission at 592 nm was identified by PL spectra. The dielectric behavior such as dielectric constant (ε′) and loss (tan δ) decreases with respect to increase in frequency of 10 Hz–1 MHz; on controversy, it increases with increasing temperature (40–200 °C). Magnetic studies clearly show the ferromagnetic (FM) nature of all the samples at room temperature. At higher substituting of Co content (x = 0.25), which has Co–Co interactions can be coupled antiferromagnetically, prominent to the small reduction of Mr and Ms. Hence, the obtained results related to the physical properties of synthesized ceramic powders were investigated.

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Publishing Information

Journal Title
Journal of Materials Science. Materials in Electronics
Journal Volume
31
Journal Issue
10
Journal Page Range
p. 7998-8014
ISSN
0957-4522
CODEN
JSMEEV

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