DocumentCode :
3534695
Title :
Enhancement in maghemite to hematite phase transition temperature with very low fraction of Co (II) doping
Author :
Pati, S.S. ; Philip, John
Author_Institution :
SMARTS, Indira Gandhi Centre for Atomic Res., Kalpakkam, India
fYear :
2011
fDate :
28-30 Nov. 2011
Firstpage :
323
Lastpage :
325
Abstract :
We study the effect of cobalt (II) ion doping in Fe3O4 on crystal structure, magnetic properties and phase transition temperature under air and vacuum annealing. Magnetite nanoparticles are prepared by co-precipitation method with ammonium hydroxide as an alkali. Our results show that the γ- Fe2O3 to α-Fe2O3 phase transition temperature increases with Co2+ doping. For 0.1 fraction of Co2+ metal ion doping in magnetite, a 100 °C enhancement in the γ-Fe2O3 to α-Fe2O3 phase transition temperature is observed in air annealed samples. The enhanced phase transition is attributed to the increased activation energy in presence of Co2+. The room temperature magnetization measurements for cobalt fraction x=0.1, shows an Ms value of 70.5 emu/g in as synthesized sample, which is reduced on air annealing at 500 °C, due to the weakening of A-B exchange interaction because of thermal fluctuations. The DSC results corroborate the XRD data of the increase in γ-Fe2O3 to α-Fe2O3 phase transition temperature with cobalt fraction. The enthalpy change decreases from 90 to 71 Jg-1 as the cobalt content increased from 0 to 0.1, which clearly indicates that the degree of conversion from maghemite to hematite decreases with cobalt content. These results suggest that a very small percentage of Co2+ metal ion doping can dramatically enhance the thermal stability of magnetic nanoparticles, which is useful for their utility in high temperature applications.
Keywords :
X-ray diffraction; annealing; cobalt; crystal structure; differential scanning calorimetry; doping; enthalpy; exchange interactions (electron); iron compounds; magnetic particles; magnetisation; nanofabrication; nanomagnetics; nanoparticles; precipitation (physical chemistry); solid-state phase transformations; thermal stability; DSC; Fe3O4:Co; X-ray diffraction; XRD; activation energy; air annealing; cobalt ion doping; coprecipitation; crystal structure; differential scanning calorimetry; enthalpy; exchange interaction; maghemite-hematite phase transition temperature; magnetic properties; magnetite nanoparticles; magnetization; temperature 293 K to 298 K; thermal fluctuations; thermal stability; vacuum annealing; Annealing; Maghemite; doping; hematite; phase transition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nanoscience, Engineering and Technology (ICONSET), 2011 International Conference on
Conference_Location :
Chennai
Print_ISBN :
978-1-4673-0071-1
Type :
conf
DOI :
10.1109/ICONSET.2011.6167973
Filename :
6167973
Link To Document :
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