EFFECTIVE LINEWIDTH DUE TO CONDUCTIVITY LOSSES IN BARIUM FERRITE AT 10 GHZ

被引:8
作者
TRUEDSON, JR
MCKINSTRY, KD
KARIM, R
PATTON, CE
机构
[1] Department of Physics, Colorado State University, Ft. Collins
关键词
Barium - Dielectric properties - Eddy currents - Electric conductivity - Ferromagnetic resonance - Microwave measurement;
D O I
10.1109/20.179793
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The effective linewidth technique has been applied at 10 GHz and room temperature to single crystal barium ferrite with uniaxial anisotropy. Effective linewidths were obtained from measurements of the positive field tails of the FMR absorption and dispersion curves for circular disks barium ferrite ranging in thickness from 0.33 to 1.75 mm. The effective linewidths ranged from 125 to 2850 Oe, and vary linearly with the square of the disk thickness. This linear relation is consistent with an eddy current loss process. A fit of the data to rudimentary eddy current theory yields a resistivity of 0.8-OMEGA-cm. This result for the resistivity is consistent with a resistivity of 1 - 4-OMEGA-cm determined from 10 Ghz dielectric measurements and 20-OMEGA-cm from dc resistivity measurements. The effective linewidth vs sample thickness extrapolated to zero thickness indicates an intrinsic linewidth of 60 +/- 45 Oe. The results indicate that for barium ferrite samples thicker than about 0.3 mm, the effective linewidth losses are dominated by losses due to eddy currents in the material.
引用
收藏
页码:3309 / 3311
页数:3
相关论文
共 7 条
[1]  
GREEN JJ, 1964, SCP SOLID STATE AUG, P46
[2]   ULTRASENSITIVE TECHNIQUE FOR MICROWAVE SUSCEPTIBILITY DETERMINATION DOWN TO 10-5 [J].
PATTON, CE ;
KOHANE, T .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1972, 43 (01) :76-&
[3]  
RRUEDSON JR, IN PRESS PHYS REV B
[4]  
SCHLOMANN E, 1967, AFMLTR67201 TECHN RE, P56
[5]  
SMITH DO, 1963, MAGNETISM, V3, P465
[6]   EFFECTIVE LINEWIDTH MEASUREMENTS AT 36 GHZ IN HEXAGONAL AND CUBIC FERRITES [J].
WILBER, WD ;
SILBER, LM .
JOURNAL OF APPLIED PHYSICS, 1988, 63 (08) :3353-3355
[7]  
WITTENAUER MA, IN PRESS J APPL PHYS