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Strain-Mediated Magnetization Reversal Through Spin-Transfer Torque

机译:通过自传递扭矩扭转应变的磁化强度

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Recent experiments have shown the ability to introduce an anisotropy energy to the energy landscape of a thin-film nanomagnet through the use of mechanical strain. Assuming this strain-induced anisotropy is large enough, the low-energy state of the nanomagnet is altered and can be used to initialize the magnetization along a given axis. Utilizing this effect, we propose a more energy efficient method of nanomagnet reversal through spin-transfer torque (STT). This is accomplished by first initializing the magnetization to a high-energy state and then applying a short current pulse to nudge the magnetization in the appropriate energy basin. Using extensive numerical simulations, we qualitatively analyze this type of reversal and find the optimal parameters for reliable functionality while in the presence of thermal noise. We demonstrate that despite negating the initial portion of nominal STT reversal, where the STT must fight against the damping torque of the initial energy-basin, the magnitude of spin current required for our proposed strain-mediated reversal is equivalent to the nominal case. However, the strain-meditated reversal is beneficial by minimizing the spincurrent pulsewidth necessary for reliable operation allowing for large energy savings. Assuming the strain-anisotropy is significantly larger than the nanomagnet's internal free-axis anisotropy, strain-mediated reversals offer a 10× energy reduction over nominal STT reversals.
机译:最近的实验表明,可以通过使用机械应变将各向异性能引入薄膜纳米磁体的能级。假设该应变引起的各向异性足够大,则纳米磁体的低能态会发生变化,并可用于初始化沿给定轴的磁化。利用这种效应,我们提出了一种通过自旋传递转矩(STT)反转纳米磁体的更节能的方法。这是通过首先将磁化强度初始化为高能状态,然后施加短电流脉冲以在适当的能量盆中微调磁化强度来实现的。通过广泛的数值模拟,我们定性分析了这种类型的反转,并在存在热噪声的情况下找到了可靠功能的最佳参数。我们证明,尽管否定了STT标称反向的初始部分,但STT必须与初始能量池的阻尼扭矩作斗争,但我们提出的应变介导的反向所需的自旋电流的大小与标称情况相同。但是,通过最小化可靠运行所需的自旋电流脉冲宽度,可以节省大量能量,因此,通过应变进行逆转是有益的。假设应变各向异性比纳米磁铁的内部自由轴各向异性大得多,那么应变介导的逆转比标称STT逆转降低了10倍的能量。

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