论文标题
用磁各向异性图案图案的轨道中的Skyrmion限制和动力学:理论和模拟
Skyrmion confinement and dynamics in tracks patterned with magnetic anisotropy: theory and simulations
论文作者
论文摘要
Skyrmion是在磁性薄膜中激发的拓扑保护的自旋纹理。天空的半径通常为10-100 nm。由于大小,天空有望成为记忆和新型设备使用情况的候选者。为了实现将使用Skyrmion电路的未来派设备,需要指导Skyrmions运动的轨道。在没有潜在的口袋的情况下,对带有磁性轴基能量差异的轨道进行了差异,而从磁性膜上雕刻而成的轨道由于去磁场而在拐角处具有潜在的口袋。因此,用磁各向异性图案的轨道在使天空电路中起着关键作用。该想法的实验是针对轮毂和弯曲轨道进行的。但是,在这些轨道中,我们鲜为人知的天空运动。这项工作旨在确定轨道和轨道壁之间作用的力。天空上的静电可以表示为减去由磁性触及镜的起伏引起的势能的梯度。可以从数值上估算电势,并用其半径和域壁宽度对天空的形状进行建模。我们发现,力不仅取决于距墙壁的距离,还取决于天空的形状。我们还进行了微磁模拟,其中磁性 - 动脉反相梯度的加速度以及壁的加速度都考虑到了力。仿真结果与模型的天空基金会计算出的结果很好地一致。
Skyrmion is a topologically protected spin texture excited in magnetic thin films. The radii of skyrmions are typically 10-100 nm. Because of the size, the skyrmion is expected to be a candidate for memory and novel-device usages. To realize the futuristic devices that will be using the skyrmion circuit, the tracks which guide the motion of skyrmions are needed. The tracks patterned with differences in the magnetic-anisotropy energy are well-paved without a potential pocket, whereas the tracks carved out of magnetic films have the potential pockets at corners due to the demagnetizing field. Therefore, the tracks patterned with the magnetic anisotropy plays a key role in making the skyrmion circuits. The experiment along this idea has been conducted for the hub and bent tracks. However, we have little known the motion of skyrmions in these tracks. This work aims to identify the forces acting between skyrmions and walls of the tracks. The static force on a skyrmion can be expressed as minus the gradient of the potential energy caused by the magnetic-anisotropy undulation. The potential can be estimated numerically, modeling the shape of skyrmions with their radii and domain wall widths. We find that the forces depend not only on the distance from the wall but also on the shape of skyrmions. We have also performed micromagnetic simulations where the Magnus force and the acceleration by the magnetic-anisotropy gradient are taken into account as well as the force by the walls. The simulation results show good agreement with those calculated from the modeled skyrmions.