Title :
Buffer Layers for Highly Ordered L1
FePt-Oxide Thin Film Granular Media at Reduced Processing Temperature
Author :
Yang, En ; Laughlin, David E. ; Zhu, Jian-Gang
Author_Institution :
Data Storage Syst. Center, Carnegie Mellon Univ., Pittsburgh, PA, USA
fDate :
6/1/2010 12:00:00 AM
Abstract :
In this work, we present an experimental technique for obtaining highly ordered L10 FePt-oxide thin film media at moderate deposition temperatures. In most previous studies, a FePt-Oxide layer is directly deposited on a (001) textured MgO layer. By introducing a buffer layer in between the FePt-oxide layer and the MgO underlayer, we are able to substantially enhance the L10 ordering of the FePt-oxide layer while lowering the deposition temperature to 400 . The buffer layer also yields a significantly enhanced (001) texture of the formed L10 FePt structure. With the order parameter near unity, the coercivity of the resulting granular L10 FePt-oxide film exceeds 20 kOe with an average grain size about 8 nm. With the buffer layer technique, 18kOe coercivity has also been achieved for L10 FePt-oxide film at a grain size of about 4.5 nm. In this work, the detailed material composition choice of the buffer layers and the corresponding results are presented.
Keywords :
buffer layers; coercive force; grain size; iron compounds; magnesium compounds; magnetic thin films; FePt; FePt-oxide thin film; MgO; buffer layers; coercivity; grain size; granular media; moderate deposition temperatures; reduced processing temperature; Buffer layers; Coercive force; Grain size; Hard disks; Magnetic films; Magnetic materials; Perpendicular magnetic recording; Sputtering; Substrates; Temperature; FePt; magnetic recording; thin films;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2010.2043070