Influence of Cr3+ substituted NiZnCo nano-ferrites: structural, magnetic and DC electrical resistivity properties

被引:0
作者
G. Vishnu Priya
N. Murali
M. K. Raju
Bal Krishan
D. Parajuli
Praveen Choppara
B. Chandra Sekhar
Ritesh Verma
Khalid Mujasam Batoo
P. V. Lakshmi Narayana
机构
[1] Andhra University,Department of Nuclear Physics
[2] AUCE (A),Department of Engineering Physics
[3] Andhra University,Department Physics
[4] WISTM Engineering College,Department of Chemistry
[5] Bahra University,Research Center for Applied Science and Technology
[6] Tribhuvan University,Department of Chemistry
[7] KTM,School of Physics and Materials Science
[8] P. R. Government College (A),College of Science
[9] Vignan’s Institute of Engineering for Women,undefined
[10] Shoolini University,undefined
[11] King Saud University,undefined
来源
Applied Physics A | 2022年 / 128卷
关键词
NiZnCo ferrites; XRD; FESEM; FTIR; Magnetic properties;
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摘要
This report synthesized the Cr3+-substituted NiZnCo ferrite nanoparticles using the sol–gel auto-combustion method. The X-ray diffraction (XRD) pattern revealed the formation of single-phase spinel cubic ferrite. The lattice constant is observed to increase from 8.34 Å to 8.47 Å for x = 0.05 and further decreases to 8.38 Å with the further increase in doping, whereas crystallite size decreases from 32.15 nm to 25.68 nm. Field Emission Scanning Electron Microscopy (FESEM) shows that grain size increases initially with Cr3+ concentration, whereas for x = 0.2, grain size decreases. Fourier Transform Infrared Spectroscopy (FTIR) shows the formation of peak v1 around 600 cm−1 and v2 around 400 cm−1, confirming the formation of spinel structure. The reducing saturation magnetization from 68.49 emu/g to 51.64 emu/g with the addition of Cr3+ ions shows a higher B–B interaction than A–B interaction. The DC resistivity increased with the increase in dopant concentration till x = 0.1, and with further increase in doping concentration, the resistivity decreased.
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