Title :
Magnetic anisotropies of Fe/sub n//V/sub m/[001] superlattices determined by ferromagnetic resonance
Author :
Anisimov, A.N. ; Platow, W. ; Poulopoulos, P. ; Farle, M. ; Baberschke, K. ; Isberg, P. ; Granberg, P. ; Wappling, R.
Author_Institution :
Inst. fur Experimentalphys., Freie Univ. Berlin, Germany
fDate :
7/1/1998 12:00:00 AM
Abstract :
The temperature-dependent magnetic anisotropies of Fen/Vm(001) superlattices on MgO(OO1) were determined by Ferromagnetic Resonance (FMR). The Fe-layer thickness n ranges between 2 and 4 atomic layers. The shape anisotropy dominates, and the easy-axis of the magnetization of the samples is always in the film plane. The second-order out-of-plane magnetic anisotropy is mainly determined by magnetoelastic effects due to the in-plane lattice expansion of the Fe. The fourth order in-plane anisotropy presents a strong temperature dependence as a result of the competition between a volume part favoring the Fe-[100] and a surface part favoring the Fe[ll0] in-plane direction. A very small stepinduced in-plane uniaxial anisotropy reveals the existence of very-large atomically-flat terraces. This information, in combination with the observation of very narrow FMR-linewidths, indicates the excellent structural quality of our samples.
Keywords :
ferromagnetic resonance; iron; magnetic anisotropy; magnetic multilayers; metallic superlattices; vanadium; FMR-linewidths; Fe-V; Fe-layer thickness; ferromagnetic resonance; fourth order in-plane anisotropy; in-plane lattice expansion; magnetic anisotropies; magnetization; magnetoelastic effects; second-order out-of-plane magnetic anisotropy; shape anisotropy; step-induced in-plane uniaxial anisotropy; temperature dependence; very-large atomically-flat terraces; Anisotropic magnetoresistance; Atomic layer deposition; Iron; Magnetic anisotropy; Magnetic films; Magnetic resonance; Magnetic superlattices; Magnetization; Perpendicular magnetic anisotropy; Shape;
Journal_Title :
Magnetics, IEEE Transactions on