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Confinement of Magnetic Vortex and Domain Walls in Dipolar-Coupled Concentric Nanocylinders

机译:偶极耦合同心纳米圆柱中磁涡旋和畴壁的限制

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We report a theoretical study of the magnetic phases of core–shell nanocylinders, consisting of a Py cylindrical core, dipolar coupled to a coaxial Fe cylindrical shell. A few nanometers thick nonmagnetic cylindrical layer separates the core from the shell, and controls the magnitude of the core–shell dipolar interaction. New magnetic phases emerge from the dipolar interaction, and may consist of either the combination of the intrinsic magnetic phases or new phases that are not seen in isolated cylinders and shells. We discuss typical examples. The magnetic phases of a 21 nm-height nanocylinder composed of a 57 nm-diameter Py core coupled to a 12 nm-thick Fe shell may be set to be a Py vortex with the same chirality of the Fe shell circular state, or a Py uniform domain coupled to a pair of domain walls of the Fe shell onion state. A magnetic vortex may be stabilized in a 6 nm-height, 42 nm-diameter Py cylinder coupled to a 6 nm-thick Fe shell.
机译:我们报告了关于核-壳纳米圆柱体磁相的理论研究,该圆柱体由一个Py圆柱核,偶极耦合到一个同轴的Fe圆柱壳组成。几纳米厚的非磁性圆柱层将核与壳分开,并控制核-壳偶极相互作用的大小。新的磁相由偶极相互作用产生,并且可以由固有磁相的组合或在孤立的圆柱体和壳体中看不到的新相组成。我们讨论典型的例子。可以将直径为57 nm的Py磁芯与厚度为12 nm的Fe壳耦合的21 nm高的纳米圆柱的磁相设置为具有与Fe壳圆形相同的手征性的Py涡流或Py均匀的畴耦合到Fe壳洋葱状态的一对畴壁上。可以在耦合到6 nm厚的Fe壳的6 nm高,直径为42 nm的Py圆柱体中稳定磁涡流。

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