Title :
Structural Peculiarities and Magnetic Properties of FeNi Films and FeNi/Ti-Based Magnetic Nanostructures
Author :
Alzola, N. Villar ; Kurlyandskaya, G.V. ; Larrañaga, A. ; Svalov, A.V.
Author_Institution :
Dept. de Electr. y Electron., Univ. del Pais Vasco, Bilbao, Spain
fDate :
4/1/2012 12:00:00 AM
Abstract :
Fe19Ni81 films and Fe19Ni81/Ti-based nanostructures were prepared by rf-sputtering. The thicknesses of FeNi samples were below and above the critical thickness of the transition into "transcritical" state which controls perpendicular magnetic anisotropy and there fore the low coercivity and magnetic softness. FeNi/Ti-based magnetic nanostructures were designed with focus on high-frequency applications. Their structure was studied by X-ray diffraction. The magnetic properties and magnetic domains were investigated by mag neto-optical Kerr effect and Bitter technique. The increase of the grain size was observed with an increase of the total thickness of the films. It was shown that [FeNi(50 nm)/Ti(6 nm)]7/FeNi(50 nm) nanostructures have the lowest coercivity and interesting struc tural features which can be responsible for the improvement of their magnetic properties.
Keywords :
Kerr magneto-optical effect; X-ray diffraction; coercive force; grain size; iron alloys; magnetic domains; magnetic thin films; metallic thin films; nanomagnetics; nanostructured materials; nickel alloys; perpendicular magnetic anisotropy; soft magnetic materials; sputter deposition; titanium; Bitter technique; FeNi; FeNi-Ti; X-ray diffraction; coercivity; critical thickness; grain size; high-frequency applications; magnetic domains; magnetic nanostructures; magnetic properties; magnetic softness; magneto-optical Kerr effect; perpendicular magnetic anisotropy; rf-sputtering; size 50 nm; size 6 nm; structural properties; thin films; transcritical state; Magnetic domains; Magnetic hysteresis; Magnetic multilayers; Magnetic separation; Nanostructures; Perpendicular magnetic anisotropy; Magnetic anisotropy; magnetic domains; magnetic nanostructures; permalloy films;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2011.2172781