DocumentCode
1076515
Title
Magnetic and structural properties of FePt-FeRh exchange spring films for thermally assisted magnetic recording media
Author
Thiele, Jan-Ulrich ; Maat, Stefan ; Robertson, J. Lee ; Fullerton, Eric E.
Author_Institution
San Jose Res. Center, Hitachi Global Storage Technol., San Jose, CA, USA
Volume
40
Issue
4
fYear
2004
fDate
7/1/2004 12:00:00 AM
Firstpage
2537
Lastpage
2542
Abstract
Recently a novel media structure for thermally assisted magnetic recording was proposed consisting of a layer of FePt exchange coupled to a FeRh layer. The FePt forms a high magnetocrystalline anisotropy, high coercivity ferromagnetic layer. The FeRh layer is antiferromagnetic at room temperature, but upon heating above a transition temperature becomes ferromagnetic with a large magnetic moment and low magnetocrystalline anisotropy. The coupled ferromagnetic FePt and FeRh layers form an exchange-spring system significantly lowering the coercive field of the composite system compared to a single layer of FePt. This feature opens intriguing possibilities for media applications for thermally assisted magnetic recording where the ferromagnetic phase of FeRh is exploited to help write the media while the low-temperature antiferromagnetic phase supports the long-term stability. Here temperature-dependent structural and magnetic measurements of undoped and doped FeRh single layer and FePt-FeRh bilayer films are presented and the promises and challenges of the exchange spring media structure are discussed.
Keywords
antiferromagnetic materials; coercive force; ferromagnetic materials; ferromagnetic-antiferromagnetic transitions; interface magnetism; iron alloys; magnetic anisotropy; magnetic moments; magnetic recording; platinum alloys; rhodium alloys; FePt layer; FePt-FeRh; FePt-FeRh bilayer films; FePt-FeRh exchange spring films; FeRh layer; coercive ferro-magnetic layer; exchange coupling; exchange spring media; exchange-spring system; ferromagnetic layers; iron alloys; layer doping; long-term stability; low temperature antiferromagnetic phase; magnetic moment; magnetic properties; magnetic recording media; magnetization reversal; magnetocrystalline anisotropy; structural properties; thermally assisted magnetic recording; thin films; transition temperature; Anisotropic magnetoresistance; Antiferromagnetic materials; Heat-assisted magnetic recording; Magnetic anisotropy; Magnetic films; Magnetic moments; Magnetic properties; Perpendicular magnetic anisotropy; Springs; Temperature; Iron alloys; magnetic recording; magnetization reversal; thin films;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2004.829325
Filename
1325561
Link To Document