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Thin film rare earth iron garnets with perpendicular magnetic anisotropy for spintronic applications

机译:具有垂直磁各向异性的薄膜稀土铁石榴石,用于自旋电子学

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摘要

Perpendicular magnetic anisotropy (PMA) in garnet thin films is important for achieving numerous spintronic applications including spin-orbit switching. In this study, we computationally investigated how to control PMA by tuning substrate strain in Holmium Iron Garnet (HoIG) films grown on five different (111) single crystal garnet substrates of Gadolinium Gallium Garnet (GGG, Gdsub3/subGasub5/subOsub12/sub), Yttrium Aluminum Garnet (YAG, Ysub3/subAlsub5/subOsub12/sub), Terbium Gallium Garnet (TGG, Tbsub3/subGasub5/subOsub12/sub), Substituted Gadolinium Gallium Garnet (sGGG, Gdsub3/subScsub2/subGasub3/subOsub12/sub), and Neodymium Gallium Garnet (NGG, Ndsub3/subGasub5/subOsub12/sub). The negative sign of effective anisotropy energy density, Ksubeff/sub 0, and anisotropy field, Hsuba/sub 0, determines the easy magnetization axis of the film to be perpendicular to the film surface. Here, we show that magnetoelastic anisotropy energy density determines the sign of the total anisotropy and it can be manipulated by altering the lattice parameter mismatch of the film and its substrate. Based on this study, HoIG is predicted to have PMA when grown on GGG, TGG and YAG among all five substrates mentioned. Moreover, the saturation field magnitude is calculated as an order of several hundreds of Oersteds, which is feasible in practical applications to saturate rare earth iron garnets with perpendicular magnetic anisotropy.
机译:石榴石薄膜中的垂直磁各向异性(PMA)对于实现包括自旋轨道切换在内的众多自旋电子应用至关重要。在这项研究中,我们通过计算研究了如何通过调节tuning镓石榴石(GGG,Gd 3 )的五个不同(111)单晶石榴石衬底上生长的Hol铁石榴石(HoIG)膜中的衬底应变来控制PMA。 Ga 5 O 12 ),钇铝石榴石(YAG,Y 3 Al 5 O 12 < / sub>),Ter镓石榴石(TGG,Tb 3 Ga 5 O 12 ),取代的d镓石榴石(sGGG,Gd 3 Sc 2 Ga 3 O 12 )和钕镓石榴石(NGG,Nd 3 Ga 5 O 12 )。有效各向异性能量密度K eff <0的负号和H a <0的各向异性场确定了薄膜的易磁化轴垂直于薄膜表面。在这里,我们表明磁弹性各向异性能密度决定了总各向异性的符号,并且可以通过改变薄膜及其衬底的晶格参数失配来控制它。根据这项研究,预计在提到的所有五种底物中,HoIG在GGG,TGG和YAG上生长时均具有PMA。此外,饱和场的大小被计算为数百奥斯特的数量级,这在实际应用中以垂直磁各向异性使稀土铁石榴石饱和是可行的。

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