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无拓扑霍尔效应下反铁磁耦合斯格明子的稳定化与绝热控制

Stabilization and adiabatic control of antiferromagnetically coupled skyrmions without the topological Hall effect.

作者信息

Yagan Rawana, Cheghabouri Arash Mousavi, Onbasli Mehmet C

机构信息

Department of Electrical and Electronics Engineering, Koç University Sarıyer Istanbul 34450 Turkey

Department of Physics, Koç University Sarıyer Istanbul 34450 Turkey.

出版信息

Nanoscale Adv. 2023 Jul 26;5(17):4470-4479. doi: 10.1039/d3na00236e. eCollection 2023 Aug 24.

Abstract

Synthetic antiferromagnetically coupled (SAF) multilayers provide different physics of stabilizing skyrmions while eliminating the topological Hall effect (THE), enabling efficient and stable control. The effects of material parameters, external current drive, and a magnetic field on the skyrmion equilibrium and propagation characteristics are largely unresolved. Here, we present a computational and theoretical demonstration of the large window of material parameters that stabilize SAF skyrmions determined by saturation magnetization, uniaxial anisotropy, and Dzyaloshinskii-Moriya interaction. Current-driven SAF skyrmion velocities reach ∼200 m s without the THE. The SAF velocities are about 3-10 times greater than the typical ferromagnetic skyrmion velocities. The current densities needed for driving SAF skyrmions could be reduced to 10 A m, while 10 A m or above is needed for ferromagnetic skyrmions. By reducing the SAF skyrmion drive current by 3 orders, Joule heating is reduced by 6 orders of magnitude. These results pave the way for new SAF interfaces with improved equilibrium, dynamics, and power savings in THE-free skyrmionics.

摘要

合成反铁磁耦合(SAF)多层膜在消除拓扑霍尔效应(THE)的同时,提供了稳定斯格明子的不同物理机制,从而实现高效稳定的控制。材料参数、外部电流驱动和磁场对斯格明子平衡及传播特性的影响在很大程度上尚未得到解决。在此,我们通过计算和理论证明了由饱和磁化强度、单轴各向异性和Dzyaloshinskii-Moriya相互作用所决定的、能稳定SAF斯格明子的材料参数的大窗口。在没有拓扑霍尔效应的情况下,电流驱动的SAF斯格明子速度达到约200米/秒。SAF速度比典型的铁磁斯格明子速度大约大3至10倍。驱动SAF斯格明子所需的电流密度可降至10安/米,而驱动铁磁斯格明子则需要10安/米或更高。通过将SAF斯格明子驱动电流降低3个数量级,焦耳热降低了6个数量级。这些结果为在无拓扑霍尔效应的斯格明子学中具有改进的平衡、动力学和节能特性的新型SAF界面铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94c0/10448311/aee05a34f37f/d3na00236e-f1.jpg

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