Title :
Determination of the magnetic compensation composition in Al-substituted Bi-DyCoIG nanoparticles with enhanced coercive-force
Author :
Kim, Tae-Youb ; Yamazaki, Yohtaro
Author_Institution :
Dept. of Phys. Electron., Tokyo Inst. of Technol., South Korea
fDate :
7/1/2004 12:00:00 AM
Abstract :
In garnet particles, higher coercive-force is required to develop a practical magnetooptical storage media. Therefore, in this paper, we develop high coercive-force particles reflecting the magnetic compensation induced by the aluminum substitution, and increasing the magnetic anisotropy under the influence of cobalt substitution for applying the garnet particles to magnetooptical storage media. Nanoparticles of aluminum substituted bismuth dysprosium cobalt iron garnet (Bi-DyCoAlIG) exhibit a magnetic compensation at room temperature. The Bi-DyCoAlIG (BiDy2Co0.2AlxFe4.8-xO12: 0≤x≤0.9) nanoparticles were made using coprecipitation and heat-treatment processes. The X-ray diffraction patterns of nanoparticles are clear that all the peaks were assigned to the single phase of the garnet structure. The particles size of the Bi-DyCoAlIG nanoparticles was observed to be less than 30 nm by transmitted electron microscope images which is comparables to the estimated average particle size of Scherrer\´s equation. The magnetic profiles of the Bi-DyCoAlIG nanoparticles show shallow minima at the composition range of 0.62Co0.2Al0.7Fe4.1O12 nanoparticles demonstrate the enhanced coercivity of 1000 Oe which is factor of 3 larger than the x=0.
Keywords :
aluminium compounds; bismuth compounds; cobalt compounds; coercive force; dysprosium compounds; heat treatment; iron compounds; magnetic anisotropy; magneto-optical recording; nanoparticles; BiDyCoAlFeO; Scherrer equation; X-ray diffraction patterns; aluminum substitution; bismuth dysprosium cobalt iron garnet; cobalt substitution; coercive force; coprecipitation; electron microscope images; garnet particles; heat-treatment processes; magnetic anisotropy; magnetic compensation composition; magnetic profiles; magnetooptical storage media; nanoparticle; Aluminum; Bismuth; Cobalt; Garnets; Iron; Magnetic anisotropy; Nanoparticles; Perpendicular magnetic anisotropy; Temperature; X-ray imaging; Bi–DyIG; garnets; magnetic anisotropy; magnetic compensation; nano-size particle; nanoparticle;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2004.829287