Title :
Permanent-magnet properties of thermally processed FePt and FePt-Fe multilayer films
Author :
Zhou, Jian ; Skomski, Ralph ; Li, Xingzhong ; Tang, Wei ; Hadjipanayis, George C. ; Sellmyer, David J.
Author_Institution :
Center for Mater. Res. & Anal., Nebraska Univ., Lincoln, NE, USA
fDate :
9/1/2002 12:00:00 AM
Abstract :
FePt single-layer and FePt-Fe multilayer thin films are prepared by magnetron sputtering. By varying the Pt content, FePt, Fe3Pt, or a mixture of FePt and Fe3Pt can be obtained in Fe-Pt single layers. In annealed FePt-Fe multilayers, the coercivities decrease with the introduction of Fe layers compared to FePt single layers, while the magnetization increases. The single-phase behavior of the hysteresis loops of FePt-Fe multilayers indicates the existence of exchange coupling in these materials. For one FePt-Fe sample with optimized exchange coupling, the intrinsic properties correspond to an energy product of 19 MGOe. The texture of the magnets is determined by the [111] orientation of the crystallites. This means that the easy magnetization directions of the FePt grains form an angle of 54.7° with the film normal, but are randomly oriented in the film plane. It is analyzed how this easy-axis distribution affects the magnetic hysteresis.
Keywords :
annealing; coercive force; exchange interactions (electron); ferromagnetic materials; iron; iron alloys; magnetic hysteresis; magnetic multilayers; magnetic thin films; permanent magnets; platinum alloys; rapid thermal annealing; remanence; sputter deposition; texture; FePt; FePt single-layer thin films; FePt-Fe; FePt-Fe multilayer thin films; Pt content; [111] orientation; coercivities; easy magnetization directions; easy-axis distribution; energy product; exchange coupling; exchange-spring magnets; hysteresis loops; magnetization; magnetron sputtering; permanent-magnet properties; random orientation; rapid thermal annealing; remanence; single-phase behavior; texture; thermally processed films; vacuum annealing; Annealing; Coercive force; Crystalline materials; Iron; Magnetic films; Magnetic hysteresis; Magnetic multilayers; Magnetization; Nonhomogeneous media; Sputtering;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2002.803109