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Spin-torque-induced dynamics at fine-split frequencies in nano-oscillators with two stacked vortices

机译:具有两个堆叠涡流的纳米振荡器在细缝频率下的自旋转矩诱导动力学

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摘要

The gyrotropic rotation around the equilibrium position constitutes the fundamental excitation of magnetic vortices in nanostructures. The frequency of this mode varies with material and sample geometry, but is independent of the vortex handedness and its core direction. Here, we demonstrate that this degeneracy is lifted in a spin-torque oscillator containing two vortices stacked on top of each other. When driven by spin-polarized currents, such devices exhibit a set of dynamic modes with discretely split frequencies, each corresponding to a specific combination of vorticities and relative core polarities. The fine splitting occurs even in the absence of external fields, demonstrating that such devices can function as zero-field, multi-channel, nano-oscillators for communication technologies. It also facilitates the detection of the relative core polarization and allows for the eight non-degenerate configurations to be distinguished electrically, which may enable the design of multi-state memory devices based on double-vortex nanopillars.
机译:围绕平衡位置的回旋旋转构成了纳米结构中磁涡旋的基本激发。该模式的频率随材料和样品的几何形状而变化,但与旋涡性及其核心方向无关。在这里,我们证明了这种简并性在包含两个彼此叠置的涡旋的自旋转矩振荡器中得到了消除。当通过自旋极化电流驱动时,此类设备会显示出一组具有离散分裂频率的动态模式,每个模式对应于涡度和相对磁芯极性的特定组合。即使在没有外部场的情况下,也会发生精细分裂,这表明此类设备可以用作通信技术的零场,多通道,纳米振荡器。它还有利于相对芯极化的检测,并允许在电学上区分八个非简并配置,这可以实现基于双涡旋纳米柱的多状态存储器件的设计。

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