DocumentCode :
846335
Title :
Magnetic relaxations in metallic multilayers
Author :
Heinrich, Bret ; Urban, Radovan ; Woltersdorf, Georg
Author_Institution :
Dept. of Phys., Simon Fraser Univ., Burnaby, BC, Canada
Volume :
38
Issue :
5
fYear :
2002
Firstpage :
2496
Lastpage :
2501
Abstract :
The intrinsic damping mechanism in metals caused by incoherent scattering of itinerant electron-hole pair excitations by phonons and magnons will be reviewed. The unique features of magnetic relaxations in multilayers were studied by ferromagnetic resonance (FMR) using magnetic single, Au–Fe–GaAs(001), and double layer Au–Fe–Au–Fe–GaAs(001) structures prepared by molecular beam epitaxy. The magnetic relaxation in single-layer films is described by the Gilbert damping with no extrinsic contributions to the FMR linewidth. These films provided an excellent opportunity to investigate nonlocal damping. The main result of these studies is that ultrathin Fe films in magnetic double layers acquire an additional interface Gilbert damping. This is in agreement with recent predictions of nonlocal interface damping which is based on the transport of spin angular momentum between the ferromagnetic layers. Measurements of the nonlocal Gilbert damping offer a possibility to carry out quantitative studies of the relaxation torques caused by nonlocal spin momentum transfer. Numerical simulations of magnetization reversal and stationary precession for an applied perpendicular current in Au–Fe–Au–Fe–GaAs(001) multilayers will be shown.
Keywords :
electron-phonon interactions; ferromagnetic relaxation; ferromagnetic resonance; gallium arsenide; gold; iron; magnetic multilayers; magnetisation reversal; magnons; spin-orbit interactions; Au-Fe-Au-Fe-GaAs; Au-Fe-GaAs; FMR; FMR linewidth; GaAs; Gilbert damping; applied perpendicular current; ferromagnetic layers; incoherent magnon scattering; incoherent phonon scattering; interface Gilbert damping; intrinsic damping mechanism; itinerant electron-hole pair excitations; magnetic double layers; magnetic relaxations; magnetization reversal; metallic multilayers; molecular beam epitaxy; nonlocal damping; nonlocal interface damping; nonlocal spin momentum transfer; numerical simulations; relaxation torques; spin angular momentum transport; spin orbit relaxation; stationary precession; ultrathin Fe films; Damping; Equations; Magnetic anisotropy; Magnetic films; Magnetic multilayers; Magnetic resonance; Perpendicular magnetic anisotropy; Perpendicular magnetic recording; Saturation magnetization; Torque;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2002.801906
Filename :
1042236
Link To Document :
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