Title :
Nonlinear Microwave Effects on Iron Based Microstrip Filter
Author :
Kuanr, Bijoy K. ; Khivintsev, Y.V. ; Hutchison, A. ; Camley, R.E. ; Celinski, Z.J.
Author_Institution :
Dept. of Phys., Colorado Univ., Colorado Springs, CO
fDate :
6/1/2007 12:00:00 AM
Abstract :
Nonlinear effects in magnetic films are a subject of growing interest. The onset of parametric instability translates into practical power limits for microwave devices. Nearly all high-power studies were done in ferrites; recently, An investigated Permalloy. However, no work has been performed on planar devices or on iron films. Here, we investigate the transmission of cw microwaves in a 6-mm-long, 13-mum-wide and 200-nm-thick iron-based microstrip notch filter in the frequency domain. At a particular field, there are three regions in the transmission response. Up to a threshold power of Pcrit, the differential absorption of ferromagnetic resonance (FMR) is nearly constant as a function of input power. Above Pcrit, the sample absorption decreases significantly as the power is increased. In addition, we observe a subsidiary absorption (SA) peak at a frequency above that of the FMR. We observed butterfly-like curves (Pcrit versus applied static magnetic field H), similar to ferrites, for FMR as well as for the subsidiary absorption. We compare the strength of the critical rf field in Fe, YIG, and Permalloy. These numbers indicate that Fe in a microstrip geometry has a much higher power handling capability. Finally, our structures can also be used as a power limiter. The SA can be significantly increased at high powers, thus limiting the transmission in the frequency range where the SA occurs. The usual FMR peak can be used as a small-signal suppressor
Keywords :
ferromagnetic materials; ferromagnetic resonance; iron; magnetic thin films; microstrip filters; microwave limiters; notch filters; 13 mum; 200 nm; 6 mm; FMR; Fe; critical rf field; differential absorption; ferromagnetic resonance; frequency domain; iron films; iron-based microstrip notch filter; magnetic films; microstrip geometry; microwave devices; nonlinear microwave effects; parametric instability; subsidiary absorption peak; threshold power; Absorption; Ferrites; Frequency; Iron; Magnetic films; Magnetic resonance; Magnetic separation; Microstrip filters; Microwave devices; Microwave filters; Fe thin film; high-power microwave; magnetic notch filter;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2007.893793