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Strain-mediated magnetoelectric effect for the electric-field control of magnetic states in nanomagnets

机译:应变介导的纳米磁带磁态电场控制的磁电效应

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摘要

Electric-field control of magnetism without electric currents potentially revolutionizes spintronics toward ultralow power. Here, by using mechanically coupled phase field simulations, we computationally demonstrate the application of the strain-mediated magnetoelectric effect for the electric-field control of magnetic states in a heterostructure. In the model heterostructure constituted of the soft nanomagnet Co and the piezoelectric substrate PMN-PT, both the volatility of magnetic states and the magnetization switching dynamics excited by the electric field are explored. It is found that an electric field can drive the single-domain nanomagnet into an equilibrium vortex state. The nanomagnet remains in the vortex state even after removing the electric field or applying a reverse electric field, i.e., the vortex state is extremely stable and nonvolatile. Only by utilizing the precessional magnetization dynamics, the 180 degrees magnetization switching is possible in small-sized nanomagnets which are free of the stable vortex state. Electric-field pulses can realize the deterministic 180 degrees switching if the electric-field magnitude, pulse width, and ramp time are carefully designed. The minimum switching time is found to be less than 10ns. These results provide useful information for the design of low-power, reliable, and fast electric-field-controlled spintronics.
机译:没有电流的电磁场控制可能会彻底彻底彻底改变了闪光灯的超级功率。这里,通过使用机械耦合的相场模拟,我们计算地证明了应变介导的磁电效应在异质结构中的磁态的电场控制的应用。在由软纳米磁体CO和压电基板PMN-PMN-PT构成的模型异质结构中,探索磁力态的波动性和由电场激发的磁化切换动力学。发现电场可以将单域纳米磁磁体驱动到平衡涡旋状态。即使在去除电场或施加反向电场之后,纳米镁仍将保持涡流状态,即涡旋状态是极稳定的并且不溶解。只有通过利用模型磁化动力学,可以在没有稳定的涡旋状态的小型纳米磁带中实现180度的磁化切换。如果仔细设计电场幅度,脉冲宽度和斜坡时间,则电场脉冲可以实现确定性的180度切换。最小切换时间被发现小于10ns。这些结果提供了用于低功耗,可靠和快速电场控制的闪奖的有用信息。

著录项

  • 来源
    《Acta Mechanica》 |2019年第4期|共10页
  • 作者单位

    Tech Univ Darmstadt Mech Funct Mat Div D-64287 Darmstadt Germany;

    Tech Univ Darmstadt Mech Funct Mat Div D-64287 Darmstadt Germany;

    Univ Kaiserslautern Inst Appl Mech D-67653 Kaiserslautern Germany;

    Tech Univ Darmstadt Div Solid Mech D-64287 Darmstadt Germany;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 力学;
  • 关键词

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