Magnetic and Magnetostrictive Properties of Sol–Gel-Synthesized Chromium-Substituted Cobalt Ferrite

Author:

Beera Chandra Sekhar1,Dhanalakshmi B.2,Devi D. Nirmala1ORCID,Vijayalakshmi D.1,Mishra Akanksha1,Ramesh S.3,Rao B. Parvatheeswara4,Shyamala P.5,Menelaou Melita6ORCID,Alanazi Nadyah7,Alodhayb Abdullah N.7ORCID

Affiliation:

1. Vignan’s Institute of Engineering for Women (Autonomous), Visakhapatnam 530046, AP, India

2. Vignan’s Institute of Information Technology (VIIT-A), Visakhapatnam 530049, AP, India

3. Department of Physics, GSS, GITAM Deemed to be University, Visakhapatnam 530045, AP, India

4. Department of Physics, Andhra University, Visakhapatnam 530003, AP, India

5. Department of Chemistry, Andhra University, Visakhapatnam 530003, AP, India

6. Department of Chemical Engineering, Cyprus University of Technology, 30 Arch. Kyprianos Str., Limassol 3036, Cyprus

7. Department of Physics and Astronomy, College of Science, King Saud University, Riyadh 11451, Saudi Arabia

Abstract

Chromium (Cr)-doped cobalt ferrite nanoparticles were synthesized using a sol–gel autocombustion method, with the chemical formula CoCrxFe2xO4. The value of x ranged from 0.00 to 0.5 in 0.1 increments. X-ray diffraction analysis confirmed the development of highly crystalline cubic spinel structures for all samples, with an average crystallite size of approximately 40 to 45 nm determined using the Scherrer equation. Pellets were prepared using a traditional ceramic method. The magnetic and magnetostrictive properties of the samples were tested using strain gauge and VSM (vibrating sample magnetometer) techniques. The results of the magnetic and magnetostrictive tests showed that the chromium-substituted cobalt ferrites exhibited higher strain derivative magnitudes than pure cobalt ferrite. These findings indicated that the introduction of chromium into the cobalt ferrite structure led to changes in the material’s magnetic properties. These changes were attributed to anisotropic contributions, resulting from an increased presence of Co2+ ions at B-sites due to the chromium substitutions. In summary, this study concluded that introducing chromium into the cobalt ferrite structure caused alterations in the material’s magnetic properties, which were explained by changes in the cationic arrangement within the crystal lattice. This study successfully explained these alterations using magnetization and coercivity data and the probable cationic dispersion.

Funder

Deputyship for Research and Innovation, Ministry of Education in Saudi Arabia

Publisher

MDPI AG

Subject

Polymers and Plastics,Organic Chemistry,Biomaterials,Bioengineering

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