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Tunnel magnetoresistance angular and bias dependence enabling tuneable wireless communication

机译:隧道磁阻角度和偏置依赖性使可调无线通信成为可能

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摘要

Spin-transfer torques (STTs) can be exploited in order to manipulate the magnetic moments of nanomagnets, thus allowing for new consumer-oriented devices to be designed. Of particular interest here are tuneable radio-frequency (RF) oscillators for wireless communication. Currently, the structure that maximizes the output power is an Fe/MgO/Fe-type magnetic tunnel junction (MTJ) with a fixed layer magnetized in the plane of the layers and a free layer magnetized perpendicular to the plane. This structure allows for most of the tunnel magnetoresistance (TMR) to be converted into output power. Here, we experimentally and theoretically demonstrate that the main mechanism sustaining steady-state precession in such structures is the angular dependence of the magnetoresistance. The TMR of such devices is known to exhibit a broken-linear dependence versus the applied bias. Our results show that the TMR bias dependence effectively quenches spin-transfer-driven precession and introduces a non-monotonic frequency dependence at high applied currents. This has an impact on devices seeking to work in the ‘THz gap’ due to their non-trivial TMR bias dependences.
机译:可以利用自旋转移力矩(STT)来操纵纳米磁铁的磁矩,从而允许设计新的面向消费者的设备。在此特别感兴趣的是用于无线通信的可调谐射频(RF)振荡器。当前,使输出功率最大化的结构是Fe / MgO / Fe型磁性隧道结(MTJ),其具有在层的平面内磁化的固定层和垂直于该平面磁化的自由层。这种结构可以将大多数隧道磁阻(TMR)转换为输出功率。在这里,我们从实验和理论上证明了在这种结构中维持稳态进动的主要机理是磁阻的角度依赖性。已知此类器件的TMR呈现出与所施加的偏置之间的线性折线相关性。我们的结果表明,TMR偏置依赖性有效地抑制了自旋转移驱动的进动,并在高施加电流下引入了非单调频率依赖性。由于它们对TMR偏置的依赖性不强,因此这对试图在“ THz间隙”下工作的设备产生了影响。

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