Title :
Magnetic Anisotropy of Epitaxially Grown Fe/Mn/Co Trilayers
Author :
Pessoa, M.S. ; Pelegrini, F. ; de Freitas, T.C. ; Passamani, E.C. ; Couet, S. ; Temst, K. ; Vantomme, A.
Author_Institution :
Inst. de Fis., Univ. Fed. de Goias, Goiania, Brazil
Abstract :
This paper reports a study of cubic magnetic anisotropies of bcc-Fe and bcc-Co structures in Fe/Mn/Co trilayers grown by molecular beam epitaxy onto MgO(001) substrates. Parallel ferromagnetic resonance experiments, at microwave frequency of 33.9 GHz, reveal the presence of a large fourfold magnetic anisotropy in all studied films. Two uniform resonance modes, with fourfold magnetic anisotropy in both bcc-Fe and Co layers, are excited by the microwave field in samples with Mn thicknesses of 0.83 and 0.99 nm. Films with thick Mn layer (1.16-2.20 nm) do not exhibit independent Fe and Co uniform modes, a result associated with an enhancement of the roughness at the Mn/Co interface (Fe/Mn interface roughness was estimated by 57Fe Mössbauer spectroscopy to be nearly constant for all films) at the Fe/Mn and Mn/Co interfaces. Magnetic anisotropy constants of bcc-Fe and bcc-Co layers of sample with 0.99 nm thick Mn layer were determined, respectively, as 4.5×105 and 6.4×105 erg/cm3.
Keywords :
Mossbauer effect; cobalt; epitaxial growth; ferromagnetic resonance; interface roughness; iron; magnetic anisotropy; magnetic multilayers; manganese; molecular beam epitaxial growth; Fe-Mn-Co; MgO; MgO(001) substrates; Mossbauer spectroscopy; bcc-Co layers; bcc-Co structures; bcc-Fe layers; bcc-Fe structures; cubic magnetic anisotropies; epitaxial grown trilayers; frequency 33.9 GHz; interface roughness; magnetic anisotropy constants; microwave field; microwave frequency; molecular beam epitaxy growth; parallel ferromagnetic resonance; size 0.83 nm; size 0.99 nm; uniform resonance modes; Iron; Magnetic resonance; Magnetization; Manganese; Microwave frequencies; Perpendicular magnetic anisotropy; Epitaxial Fe/Mn/Co trilayers; ferromagnetic resonance (FMR); magnetic anisotropy;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2013.2259806