4.5 Article

Structural, electric and dielectric properties of Ni0.5Zn0.5FeCoO4 ferrite prepared by sol-gel

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ELSEVIER
DOI: 10.1016/j.jmmm.2019.166243

Keywords

Ferrites; Mossbauer spectrometry; Dielectric properties; Transport mechanisms

Funding

  1. Tunisian National Ministry of Higher Education, Scientific Research and Technology
  2. FCT, Portugal [UID/CTM/50025/2013 I3N]
  3. FEDER (Programa Operacional Factores de Competitividade COMPETE)
  4. FCTFundacao para a Ciencia e a Tecnologia [UID/FIS/04564/2016, ICT_2009_02_012_1890]

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Ni0.5Zn0.5FeCoO4 spinel ferrite was elaborated using sol-gel technique. X-ray diffraction patterns indicate that sample has a cubic spinel type structure with Fd-3m space group. The change in Raman modes and relative intensity were observed due to ball milling and consequently to the decrease of particle size and cationic redistribution. The Raman spectra show peaks appearing at 450 and 490 cm (-1) corresponding to T(2)g (2) and T(2)g (3), respectively. It may be noted that both of these modes shift toward the higher wavenumber with the substitution of Zn by Ni in Ni0.5Zn0.5FeCoO4 ferrite. Mossbauer spectroscopy analysis shows one tetrahedral A-site and two octahedral B-sites. Due to Zn doping, the hyperfine magnetic fields are much smaller than for CoFe2O4 and NiFe2O4 ferrites. The Jonscher's power low was used to describe the ac-conductivity measurements. Frequency dependence of dielectric constant (epsilon '') and tangent loss (tan) display a dispersive behavior at low frequencies that can be explained by the Maxwell Wagner model and Koop's theory. Electric modulus formalism has used to study the relaxation dynamics of charge carriers. The complex impedance spectra (Nyquist plots) show well-defined semicircles which are strongly dependent on the temperature.

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