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Skyrmion-based spin-torque nano-oscillator in synthetic antiferromagnetic nanodisks

机译:合成反铁磁纳米型基于Skyrmion的旋转扭矩纳米振荡器

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摘要

The skyrmion-based spin-torque nano-oscillator is a potential next-generation nano microwave signal generator. In this paper, the self-sustained oscillation dynamics of magnetic skyrmions are investigated in a nanodisk with synthetic antiferromagnetic (SAF) multilayer structure, in which the skyrmion Hall effect can be effectively suppressed. An analytical model based on the Thiele equation is developed to describe the dynamics of a pair of skyrmions formed in the SAF nanodisks. Combining the analytical solutions with the micromagnetic simulations, we demonstrate that circular rotations with opposite directions for a skyrmion pair could be suppressed by increasing the antiferromagnetic (AF) coupling in a nanopillar with dual spin polarizers. However, a stable circular rotation can be achieved in a nanopillar with a single spin polarizer, in which one skyrmion plays as a master whose rotation is driven by spin torque, while the other skyrmion is a slaver whose motion is dragged by the AF coupling between the two free layers. Moreover, we found that the effective mass factor in the SAF structure rather than the gyrotropic torque plays the dominant role in the circular rotation of skyrmions. The rotation orbit radius and frequency gradually increase with the decrease of damping factor and increase of applied current strength.
机译:基于Skyrmion的旋转扭矩纳米振荡器是潜在的下一代纳米微波信号发生器。在本文中,在具有合成反铁磁体(SAF)多层结构的纳米型磁盘中研究了磁性渗透的自持续振荡动态,其中可以有效地抑制斯基逆门霍尔效应。开发了一种基于Thiele方程的分析模型,以描述在SAF纳米型中形成的一对臭鼬的动态。将分析解决方案与微磁性模拟相结合,我们证明可以通过增加具有双自旋偏振器的纳米池中的反铁磁体(AF)联接来抑制具有相反方向的圆形旋转。然而,可以在具有单个自旋偏振器的纳米玻璃器中实现稳定的圆形旋转,其中一个速度作为主旋转由旋转扭矩驱动的主体,而另一个斯基延是一种奴隶,其动作被AF耦合拖动两个自由层。此外,我们发现SAF结构中的有效质量因子而不是旋转扭矩在循环旋转中起着主导作用。随着阻尼因子的降低和施加电流强度的增加,旋转轨道半径和频率逐渐增加。

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  • 来源
    《Journal of Applied Physics》 |2020年第3期|033907.1-033907.8|共8页
  • 作者单位

    Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology School of Physics Science and Engineering Tongji University Shanghai 200092 People's Republic of China;

    Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology School of Physics Science and Engineering Tongji University Shanghai 200092 People's Republic of China;

    Department of Optical Science and Engineering Shanghai Ultra-Precision Optical Engineering Center Fudan University Shanghai 200433 People's Republic of China;

    Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology School of Physics Science and Engineering Tongji University Shanghai 200092 People's Republic of China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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