论文标题

在环境条件下具有强垂直磁各向异性的多层磁性气泡状态的控制和可调性

Control and tunability of magnetic bubble states in multilayers with strong perpendicular magnetic anisotropy at ambient conditions

论文作者

Salikhov, Ruslan, Samad, Fabian, Arekapudi, Sri Sai Phani Kanth, Lindner, Jürgen, Kiselev, Nikolai S., Hellwig, Olav

论文摘要

通过拓扑瞬间瞬态状态通过磁性气泡螺旋的逆转提供了一种额外的自由度,有望发展多维磁性记忆。该概念的关键要求是在与应用兼容的底物上的环境条件下泡泡状态的稳定。在目前的工作中,我们证明了在高垂直磁各向异性中不一致的气泡状态的稳定常规,[(CO(0.44 \,nm)/pt(0.7 \,nm)] $ _ x $,x $,x = 48,100,100,100,150个对Si/sio $ _2 $ sio $ _2 $ substrate $ _2通过这两个参数的系统变化,相对于膜表面的不同强度和角度($θ$),我们证明了对每个样本的零用气泡密度和平均气泡直径可以仔细调节和优化。 ($H_\mathrm{s}$ is the magnetic saturation field) and $θ=60^\circ - 75^\circ$ for all $X$ with a maximum of 3736 domains/100 $μ$m$^2$ for the X = 48 sample. The experimental observations are supported by micromagnetic simulations taking into account the nanoscale lateral grain structure of multilayers synthesized by magnetron sputter沉积,从而有助于了解这些系统中发现的气泡状态的不同密度。

The reversal of magnetic bubble helicity through topologically trivial transient states provides an additional degree of freedom that promises the development of multidimensional magnetic memories. A key requirement for this concept is the stabilization of bubble states at ambient conditions on application-compatible substrates. In the present work we demonstrate a stabilization routine for remanent bubble states in high perpendicular magnetic anisotropy [(Co(0.44\,nm)/Pt(0.7\,nm)]$_X$, X = 48, 100, 150 multilayers on Si/SiO$_2$ substrates by exploring the effect of external magnetic fields ($H_\mathrm{m}$) of different strength and angles ($θ$) with respect to the film surface normal. By systematic variation of these two parameters, we demonstrate that remanent bubble density and mean bubble diameter can be carefully tuned and optimized for each sample. Our protocol based on magnetometry only reveals the densest remanent bubble states at $H_\mathrm{m} = 0.87 H_\mathrm{s}$ ($H_\mathrm{s}$ is the magnetic saturation field) and $θ=60^\circ - 75^\circ$ for all $X$ with a maximum of 3736 domains/100 $μ$m$^2$ for the X = 48 sample. The experimental observations are supported by micromagnetic simulations taking into account the nanoscale lateral grain structure of multilayers synthesized by magnetron sputter deposition, and thus helping understand the different density of the bubble states found in these systems.

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