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Strong Bias Effect on Voltage-Driven Torque at Epitaxial Fe-MgO Interface

机译:外延Fe-MgO界面上的电压偏置的强偏置效应

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Torque can be provided to magnetization in nanomagnets directly by electric current and/or voltage. This technique enables electric current (voltage)-to-spin conversion without electromagnetic induction, and has been intensively studied for memory device applications. Among the various kinds of torque, torque induced by spin-orbit splitting has recently been found. However, quantitative understanding of bulk-related torque and interface-related torque is still lacking because of their identical symmetry for current-in-plane devices. In this paper, we propose that a pure interface-related torque can be characterized by spin-torque ferromagnetic resonance with a current-perpendicular-to-plane tunnel junction. Epitaxial Fe-MgO-V tunnel junctions are prepared to characterize the interface-related torque at Fe-MgO. We find that the current-driven torque is negligible, and a significant enhancement of the voltage-driven torque is observed when the MgO barrier thickness decreases. The maximum torque obtained is as large as 2.8 × 10 ? 5 J / ( Vm 2 ) , which is comparable to the voltage-controlled magnetic anisotropy of 180 fJ / Vm . The voltage-driven torque shows strong dc-bias-voltage dependence that cannot be explained by conventional voltage-controlled magnetic anisotropy. Tunnel anisotropic magnetoresistance spectroscopy suggests that the torque is correlated to an interface state at the Fe-MgO. This surface-state-sensitive electric modulation of magnetic properties provides new insight into the field of interface magnetism.
机译:可以通过电流和/或电压直接向纳米磁铁中的磁化提供扭矩。该技术无需电磁感应即可实现电流(电压)到自旋的转换,并且已在存储设备应用中进行了深入研究。在各种转矩中,最近发现了由自旋轨道分裂引起的转矩。但是,由于与面内电流设备具有相同的对称性,因此仍然缺乏对体积相关扭矩和界面相关扭矩的定量理解。在本文中,我们提出,可以通过具有电流垂直于平面的隧道结的自旋转矩铁磁共振来表征纯与界面有关的转矩。准备外延Fe-MgO-V隧道结,以表征Fe-MgO处与界面有关的扭矩。我们发现电流驱动的扭矩可以忽略不计,并且当MgO势垒厚度减小时,可以观察到电压驱动的扭矩显着提高。获得的最大转矩高达2.8×10? 5 J /(Vm 2),这相当于180 fJ / Vm的压控磁各向异性。电压驱动的转矩显示出很强的直流偏置电压依赖性,这不能用常规的电压控制磁各向异性来解释。隧道各向异性磁阻谱表明,转矩与Fe-MgO处的界面状态相关。这种对磁性能的表面状态敏感的电调制为界面磁学领域提供了新的见识。

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