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Tuning of ferrimagnetic nature and hyperfine interaction of Ni2+ doped cobalt ferrite nanoparticles for power transformer applications
Authors:KM Srinivasamurthy  Jagadeesha Angadi V  SP Kubrin  Shiddaling Matteppanavar  DA Sarychev  P Mohan Kumar  Haileeyesus Workineh Azale  B Rudraswamy
Affiliation:1. Department of Physics, Bangalore University, Bangalore 560056, India;2. Department of Physics, School of Engineering, Presidency University, Bangalore 560064, India;3. Research Institute of Physics, Southern Federal University, Rostov-on-Don, Russia;4. Department of Condensed Matter Physics & Material Science, Tata Institute of Fundamental Research, Mumbai 400005, India;5. Department of Physics, College of Science, Bahir Dar University, P.O.Box: 994, Ethiopia
Abstract:Ferrites may contain single domain particles which gets converted into super-paramagnetic state near critical size. To explore the existence of these characteristic feature of ferrites, we have performed magnetization(M-H loop) and Mössbauer spectroscopic studies of Ni2+ substitution effect in Co1-xNixFe2O4 (where x?=?0, 0.25, 0.5, 0.75 and 1) nanoparticles were fabricated by solution combustion route using mixture of carbamide and glucose as fuels for the first time. As prepared samples exhibit spinel cubic structure with lattice parameters which decreases linearly with increase in Ni2+ concentration. The M-H loops reveals that saturation magnetization(Ms), coercive field(Hc) remanence magnetization(Mr) and magnetron number(ηB) decreases significantly with increasing Ni2+ substitution. The variation of saturation magnetization has been explained on the basis of Neel's molecular field theory. The coercive field(Hc) is found strongly dependent on the concentration of Ni2+ and decrease of coercivity suggests that the particles have single domain and exhibits superparamagnetic behavior. The Mössbauer spectroscopy shows two ferrimagnetically relaxed Zeeman sextets distribution at room temperature. The dependence of Mössbauer parameters such as isomer shift, quadru pole splitting, line width and hyperfine magnetic field on Ni2+ concentration have been discussed. Hence our results suggest that synthesized materials are potential candidate for power transformer application.
Keywords:Solution combustion route  Super-paramagnetic nanoparticles  Hyperfine interaction  Mössbauer spectroscopy
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