Title :
Amorphous
Nanoparticles: Synthesis, Crystallization Process, and Magnetic Properties
Author :
Danh Bich Do ; Nguyen Dang Phu ; Nguyen Van Hung ; Luc Huy Hoang ; Le Thi Mai Oanh ; Do Minh Thanh ; Nguyen Van Minh
Author_Institution :
Fac. of Phys., Hanoi Nat. Univ. of Educ., Hanoi, Vietnam
Abstract :
Amorphous CoFe2O4 nanoparticles have been successfully synthesized by the chemical microwave-assisted method. The crystallization process and the hard magnetic properties of prepared nanoparticles were systematically investigated in terms of thermal analysis and in situ measurement of magnetization dynamics. The as-prepared sample was amorphous, which was confirmed by various techniques, such as high resolution transmission electron microscopy, with electron diffraction and X-ray diffraction. The thermal analysis using differential scanning calorimetry showed that crystallization from CoFe2O4 amorphous state to CoFe2O4 crystalline started at 290°C. Crystallization activation energy was determined using the Kissinger model with a value of 1.09 eV. A study of the temperature dependence of magnetization supported the crystallization process of cobalt ferrite nanoparticles. Magnetic measurement indicated that the as-prepared amorphous particles were superparamagnetic. Compared with the bulk material, the observed value of saturation magnetization of the annealed sample was significantly low (27 emu/g) due to its nanocrystalline nature.
Keywords :
X-ray diffraction; amorphous magnetic materials; annealing; cobalt compounds; crystallisation; differential scanning calorimetry; electron diffraction; ferrites; magnetic particles; magnetisation; microwave materials processing; nanofabrication; nanomagnetics; nanoparticles; superparamagnetism; transmission electron microscopy; CoFe2O4; Kissinger model; X-ray diffraction; amorphous nanoparticles; amorphous state; annealed sample; chemical microwave-assisted method; cobalt ferrite nanoparticles; crystalline state; crystallization activation energy; differential scanning calorimetry; electron diffraction; hard magnetic properties; high resolution transmission electron microscopy; magnetic measurement; magnetization dynamics; nanocrystalline nature; saturation magnetization; superparamagnetism; temperature dependence; thermal analysis; Amorphous magnetic materials; Annealing; Crystallization; Heating; Magnetization; Nanoparticles; Saturation magnetization; Amorphous materials; ferrite; magnetic particles; magnetic properties; microwave oven;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2014.2306814