Title :
Magnetic relaxation and anisotropy effects on high-frequency permeability
Author :
Dionne, Gerald F.
Author_Institution :
Lincoln Lab., MIT, Lexington, MA, USA
Abstract :
Initial longitudinal permeability μi and rf signal propagation as a function of angular frequency ω are examined in terms of spin-lattice interactions that manifest themselves as relaxation time τ and anisotropy energy density K1. Domain-wall resonance is analyzed as a classical damped harmonic oscillation forced by longitudinal coupling between magnetization vectors and an alternating magnetic drive field. Gyromagnetic effects from transverse drive fields are reviewed in the context of Snoek´s permeability-frequency limits. To explain the observed overlap of longitudinal and transverse regions the physical connection between the longitudinal relaxation frequency and the gyromagnetic resonance frequency is described. Guidelines for extending the permeability and frequency limits of unmagnetized ferrites are: 1) for high μi, employ large-grain multiple-domain ferrites with low-K1/high-τ combinations and 2) for high ω, create small-grain single-domain media with high K1 and low τ. At microwave frequencies, the lower edge of the gyromagnetic resonance region can overlap the decay of μi, except in cases where the very high anisotropy of hexagonal ferrites is used for millimeter wavelengths.
Keywords :
electron spin-lattice relaxation; ferrites; magnetic anisotropy; magnetic domain walls; magnetic permeability; magnetic relaxation; magnetisation; Snoek permeability-frequency limits; angular frequency; anisotropy effects; anisotropy energy density; classical damped harmonic oscillation; domain-wall resonance; gyromagnetic effects; hexagonal ferrites; high-frequency permeability; initial longitudinal permeability; large-grain multiple-domain ferrites; longitudinal coupling; longitudinal relaxation frequency; magnetic relaxation; magnetization vectors; relaxation time; rf signal propagation; spin-lattice interactions; transverse drive fields; Anisotropic magnetoresistance; Ferrites; Frequency; Gyromagnetism; Harmonic analysis; Magnetic analysis; Magnetic anisotropy; Magnetic resonance; Permeability; Perpendicular magnetic anisotropy;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2003.816026