DocumentCode
3560255
Title
Thickness Dependent Magnetic Anisotropy of Ultrathin LCMO Epitaxial Thin Films
Author
Nemes, Norbert Marcel ; Garc?a-Hern??ndez, Mar ; Szatm??ri, Zsolt ; Feh?©r, Titusz ; Simon, Ferenc ; Visani, Cristina ; Pe?±a, Vanessa ; Miller, Christian ; Garc?a-Barriocanal, Javier ; Bruno, Flavio ; Sefrioui, Zouhair ; Leon, Carlos ; Santamar?a, Jac
Author_Institution
Dept. de Fis. Aplic. III, Univ. Complutense de Madrid, Madrid
Volume
44
Issue
11
fYear
2008
Firstpage
2926
Lastpage
2929
Abstract
The magnetic properties of La0.7Ca0.3MnO3 (LCMO) manganite thin films were studied with magnetometry and ferromagnetic resonance as a function of film thickness. They maintain the colossal magnetoresistance behavior with a pronounced metal-insulator transition around 150-200 K, except for the very thinnest films studied (3 nm). Nevertheless, LCMO films as thin as 3 nm remain ferromagnetic, without a decrease in saturation magnetization, indicating an absence of dead-layers, although below approximately 6 nm the films remain insulating at low temperature. Magnetization hysteresis loops reveal that the magnetic easy axes lie in the plane of the film for thicknesses in the range of 4-15 nm. Ferromagnetic resonance studies confirm that the easy axes are in-plane, and find a biaxial symmetry in-plane with two, perpendicular easy axes. The directions of the easy axes with respect to the crystallographic directions of the cubic SrTiO3 substrate differ by 45 deg in 4- and 15-nm-thick LCMO films.
Keywords
calcium compounds; colossal magnetoresistance; crystallography; epitaxial layers; ferromagnetic materials; ferromagnetic resonance; lanthanum compounds; magnetic anisotropy; magnetic hysteresis; magnetic thin films; metal-insulator transition; La0.7Ca0.3MnO3; SrTiO3; colossal magnetoresistance; crystallographic directions; ferromagnetic resonance; magnetic properties; magnetization hysteresis loops; magnetometry; metal-insulator transition; saturation magnetization; size 4 nm to 15 nm; thickness dependent magnetic anisotropy; ultrathin LCMO epitaxial thin films; Epitaxial layers; magnetic anisotropy; magnetic resonance; manganites; thin films;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2008.2001523
Filename
4717613
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