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Impact of Zn doping on the dielectric and magnetic properties of CoFe2O4 nanoparticles
Affiliation:1. School of Chemical Engineering, Yeungnam University, Gyeongsan, 712-749, South Korea;2. Centre for High Pressure Research, School of Physics, Bharathidasan University, Tiruchirappalli, 620 024, India;3. Department of Physics, Kongunadu College of Engineering and Technology, Thottiyam, 621 215, India;4. Department of Physics, Bharathidasan University, Tiruchirappalli, 620 024, India;5. Centre for Material Science, Department of Physics, Karpagam Academy of Higher Education, Coimbatore, 641 021, India;6. Department of Mechanical Engineering, Keimyung University, Daegu, 42601, South Korea;7. Math and Natural Sciences, Engineering Technology Division, Abudhabi Men''s College, Higher Colleges of Technology, United Arab Emirates
Abstract:Owing to its unique magnetic, dielectric, electrical and catalytic properties, ferrite nanostructure materials gain vital importance in high frequency, memory, imaging, sensor, energy and biomedical applications. Doping is one of the strategies to manipulate the spinel ferrite structure, which could alter the physico-chemical properties. In the present work, Co1-xZnxFe2O4 (x = 0, 0.1, 0.2, 0.3, and 0.4 wt%) nanoparticles were prepared by sol-gel auto-combustion method and its structural, morphological, vibrational, optical, electrical and magnetic properties were studied. The structural analysis affirms the single-phase cubic spinel structure of CoFe2O4. The crystallite size, lattice constant, unit cell, X-ray density, dislocation density and hopping length were significantly varied with Zn doping. The Fe–O stretching vibration was estimated by FTIR and Raman spectra. TEM micrographs show the agglomerated particles and it size varies between 10 and 56 nm. The Hall effect measurement shows the switching of charge carriers from n to p type. The dielectric constant (ε′) varies from 0.2 × 103 to 1.2 × 103 for different Zn doping. The VSM analysis shows relatively high saturation magnetization of 57 and 69 emu/g for ZC 0.1 and ZC 0.2 samples, respectively than that of undoped sample. All the prepared samples exhibit soft magnetic behaviour. Hence, it can be realized that the lower concentration of Zn ion doping significantly alters the magnetic properties of CoFe2O4 through variation in the cationic distribution and exchange interaction between the Co and Fe sites of the inverse spinel structure of CoFe2O4.
Keywords:Spinel ferrite  Sol–gel auto-combustion  Permittivity  Resistivity  Magnetization and electrical properties
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