Coprecipitation Synthesis of CoFe2O4 Nanoparticles for Hyperthermia

Cobalt ferrite (CoFe2 O4 ) nanoparticles have attracted significantly attentions for spintronics, recording media and bioapplications due to their unique magnetic and chemical properties. In this work, single phase CoFe2 O4 nanoparticles were synthesized at various coprecipitation temperatures (60,...

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Main Authors: Tahereh Shahjuee, Seyyed Morteza Masoudpanah, Seyed Mohammad Mirkazemi
פורמט: Article
שפה:English
יצא לאור: University of Tehran 2017-12-01
סדרה:Journal of Ultrafine Grained and Nanostructured Materials
נושאים:
גישה מקוונת:https://jufgnsm.ut.ac.ir/article_64243_3bac048e5ee93bbc4476b1fe9482ad38.pdf
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author Tahereh Shahjuee
Seyyed Morteza Masoudpanah
Seyed Mohammad Mirkazemi
author_facet Tahereh Shahjuee
Seyyed Morteza Masoudpanah
Seyed Mohammad Mirkazemi
author_sort Tahereh Shahjuee
collection DOAJ
description Cobalt ferrite (CoFe2 O4 ) nanoparticles have attracted significantly attentions for spintronics, recording media and bioapplications due to their unique magnetic and chemical properties. In this work, single phase CoFe2 O4 nanoparticles were synthesized at various coprecipitation temperatures (60, 80 and 90 °C) without post calcination. The effects of oleic acid as surfactant on the microstructure, magnetic properties and heating rate were characterized by X-ray diffraction, infrared spectroscopy, scanning electron microscopy and vibrating sample magnetometry techniques. The small particle size and narrow size distribution were achieved using oleic acid. IR spectra showed the oleic acid molecules adsorbed on particle surface, leading to the lower growth rate and then the smaller nanoparticles. The CoFe2 O4 nanoparticles showed ferromagnetic behavior. The highest saturation magnetization of 45 emu/g and coercivity of 950 Oe were achieved at the coprecipitation temperature of 80 °C without using oleic acid. However, the saturation magnetization increased from 8 to 37 emu/g with the coprecipitation temperature due to the increase of crystallinity and particle size. The coprecipitated CoFe2 O4 nanoparticles at 80 °C exhibited the AC heating temperature of 7.5°C and specific loss power of 18.3 W/g under magnetic field of 100 Oe and frequency of 200 kHz. The heat generation mechanism was attributed to the hysteresis loss.
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spelling doaj.art-c4d64f6b5ca64b9daff0b5e2c8ab1c292022-12-22T00:35:34ZengUniversity of TehranJournal of Ultrafine Grained and Nanostructured Materials2423-68452423-68372017-12-0150210511010.22059/JUFGNSM.2017.02.0464243Coprecipitation Synthesis of CoFe2O4 Nanoparticles for HyperthermiaTahereh Shahjuee0Seyyed Morteza Masoudpanah1Seyed Mohammad Mirkazemi2School of Metallurgy & Materials Engineering, Iran University of Science and Technology (IUST), Tehran, IranSchool of Metallurgy & Materials Engineering, Iran University of Science and Technology (IUST), Tehran, IranSchool of Metallurgy & Materials Engineering, Iran University of Science and Technology (IUST), Tehran, IranCobalt ferrite (CoFe2 O4 ) nanoparticles have attracted significantly attentions for spintronics, recording media and bioapplications due to their unique magnetic and chemical properties. In this work, single phase CoFe2 O4 nanoparticles were synthesized at various coprecipitation temperatures (60, 80 and 90 °C) without post calcination. The effects of oleic acid as surfactant on the microstructure, magnetic properties and heating rate were characterized by X-ray diffraction, infrared spectroscopy, scanning electron microscopy and vibrating sample magnetometry techniques. The small particle size and narrow size distribution were achieved using oleic acid. IR spectra showed the oleic acid molecules adsorbed on particle surface, leading to the lower growth rate and then the smaller nanoparticles. The CoFe2 O4 nanoparticles showed ferromagnetic behavior. The highest saturation magnetization of 45 emu/g and coercivity of 950 Oe were achieved at the coprecipitation temperature of 80 °C without using oleic acid. However, the saturation magnetization increased from 8 to 37 emu/g with the coprecipitation temperature due to the increase of crystallinity and particle size. The coprecipitated CoFe2 O4 nanoparticles at 80 °C exhibited the AC heating temperature of 7.5°C and specific loss power of 18.3 W/g under magnetic field of 100 Oe and frequency of 200 kHz. The heat generation mechanism was attributed to the hysteresis loss.https://jufgnsm.ut.ac.ir/article_64243_3bac048e5ee93bbc4476b1fe9482ad38.pdfCoFe2O4Coprecipitation, Magnetic properties, Hyperthermia
spellingShingle Tahereh Shahjuee
Seyyed Morteza Masoudpanah
Seyed Mohammad Mirkazemi
Coprecipitation Synthesis of CoFe2O4 Nanoparticles for Hyperthermia
Journal of Ultrafine Grained and Nanostructured Materials
CoFe2O4
Coprecipitation, Magnetic properties, Hyperthermia
title Coprecipitation Synthesis of CoFe2O4 Nanoparticles for Hyperthermia
title_full Coprecipitation Synthesis of CoFe2O4 Nanoparticles for Hyperthermia
title_fullStr Coprecipitation Synthesis of CoFe2O4 Nanoparticles for Hyperthermia
title_full_unstemmed Coprecipitation Synthesis of CoFe2O4 Nanoparticles for Hyperthermia
title_short Coprecipitation Synthesis of CoFe2O4 Nanoparticles for Hyperthermia
title_sort coprecipitation synthesis of cofe2o4 nanoparticles for hyperthermia
topic CoFe2O4
Coprecipitation, Magnetic properties, Hyperthermia
url https://jufgnsm.ut.ac.ir/article_64243_3bac048e5ee93bbc4476b1fe9482ad38.pdf
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AT seyyedmortezamasoudpanah coprecipitationsynthesisofcofe2o4nanoparticlesforhyperthermia
AT seyedmohammadmirkazemi coprecipitationsynthesisofcofe2o4nanoparticlesforhyperthermia