• 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