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Role of nanoparticle interaction in magnetic heating

Published online by Cambridge University Press:  21 June 2019

Ramanujam Lenin
Affiliation:
Institute of Nano Science and Technology, Habitat Center, Phase-X, Mohali, Punjab 160062, India
Ajit Singh
Affiliation:
Institute of Nano Science and Technology, Habitat Center, Phase-X, Mohali, Punjab 160062, India
Chandan Bera*
Affiliation:
Institute of Nano Science and Technology, Habitat Center, Phase-X, Mohali, Punjab 160062, India
*
Address all correspondence to Chandan Bera at chandan@inst.ac.in
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Abstract

Magnetic nanoparticles have many potential applications in therapeutics and drug delivery. Heating by magnetic nanoparticles for hyperthermia application has gained tremendous popularity as a non-invasive treatment for tumor ablation. The heating effect of magnetic nanoparticles at different concentrations (1–10 wt%) in the fluid is investigated by varying the alternating magnetic field (60–260 Oe). The observed temperature rise (ΔT) shows an unusual increase with applied field in a higher nanoparticle concentration. In contrast to the previous model, the present study shows that temperature rise is more rapid in the higher particle concentration (~10 wt%) and low applied field (<125 Oe), and ΔT varies as H3/2 instead of H2.

Type
Research Letters
Copyright
Copyright © Materials Research Society 2019 

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