Title :
Microstructures and High Frequency Properties of
Doped
Author :
Shihai Guo ; Yanghuan Zhang ; Yu Wang ; Jing An ; Dongliang Zhao
Author_Institution :
Div. of Functional Mater. Res., Central Iron & Steel Res. Inst., Beijing, China
Abstract :
The Sm3+ doped Co2Z-type hexagonal ferrite materials were prepared by conventional ceramic method and characterized by techniques such as X-ray diffractometer and scanning electron microscopy. The influence of a small amount of Sm3+ addition on structures and magnetic properties of the materials was investigated. The results show that Co2Z-type hexaferrite is still in the main phase of the Co2Z ferrite materials doped with Sm3+. It is observed that Sm-rich phase with granular morphology is dispersed in the main phase. The hysteresis measurement indicates that the specific saturation magnetization of Sm3+ doped sample is bigger than that of the undoped one. The addition of Sm3+ in Co2Z ferrite can decrease the real part μ´ and the imaginary part μ´´ of complex permeability, but increase significantly the cutoff frequency. The Sm3+ doped Co2Z ferrites sintered at 1250°C exhibited excellent high frequency properties such as high cutoff frequency above 1.8 GHz and higher initial permeability up to 5.
Keywords :
X-ray diffraction; barium compounds; ceramics; cobalt compounds; crystal microstructure; doping profiles; ferrites; magnetic hysteresis; magnetic permeability; samarium; scanning electron microscopy; sintering; Ba3Co2Fe24O41; X-ray diffractometry; antiEMI magnetic bead materials; ceramic method; doped hexagonal ferrites; hexagonal ferrite materials; high-frequency properties; hysteresis; magnetic properties; microstructures; morphology; permeability; saturation magnetization; scanning electron microscopy; sintering; structural properties; temperature 1250 degC; Cutoff frequency; Ferrites; Magnetic hysteresis; Magnetic resonance imaging; Permeability; Saturation magnetization; ${hbox{Co}}_2{hbox{Z}}$ -type hexagonal ferrite; Anti-EMI magnetic bead; high frequency magnetic properties; rare earth Samarium ion;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2013.2274269