1] Advanced Electronics Research Division, INAMORI Frontier Research Center, Kyushu University, 744 Motooka, Fukuoka, 819-0395, Japan [2] CREST, Japan Science and Technology Agency, Sanbancho, Tokyo 102-0075, Japan.
Graduate School of Information Science and Electrical Engineering, Kyushu University, 744 Motooka, Fukuoka, 819-0395, Japan.
Sci Rep. 2013 Dec 20;3:3567. doi: 10.1038/srep03567.
A magnetic vortex structure stabilized in a micron or nano-sized ferromagnetic disk has a strong potential as a unit cell for spin-based nano-electronic devices because of negligible magnetostatic interaction and superior thermal stability. Moreover, various intriguing fundamental physics such as bloch point reversal and symmetry breaking can be induced in the dynamical behaviors in the magnetic vortex. The static and dynamic properties of the magnetic vortex can be tuned by the disk dimension and/or the separation distance between the disks. However, to realize these modifications, the preparations of other devices with different sample geometries are required. Here, we experimentally demonstrate that, in a regular-triangle Permalloy dot, the dynamic properties of a magnetic vortex are greatly modified by the application of the in-plane magnetic field. The obtained wide range tunability based on the asymmetric position dependence of the core potential provides attractive performances in the microwave spintronic devices.
在微米或纳米尺寸的铁磁盘中稳定的磁涡旋结构因其磁静力学相互作用可忽略和优越的热稳定性,有望成为基于自旋的纳米电子器件的单元。此外,在磁涡旋的动力学行为中可以诱导各种有趣的基础物理现象,如 Bloch 点反转和对称破缺。磁涡旋的静态和动态特性可以通过磁盘尺寸和/或磁盘之间的分离距离来调节。然而,为了实现这些改进,需要制备具有不同样品几何形状的其他设备。在这里,我们通过实验证明,在规则三角形的坡莫合金点中,通过施加面内磁场可以极大地改变磁涡旋的动力学特性。基于核心势的非对称位置依赖性的获得的宽范围可调性为微波自旋电子器件提供了有吸引力的性能。