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Direct electronic measurement of the spin Hall effect

机译:直接电子测量自旋霍尔效应

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The generation, manipulation and detection of spin-polarized electrons in nanostructures define the main challenges of spin-ased electronics(1). Among the different approaches for spin generation and manipulation, spin - orbit coupling - which couples the spin of an electron to its momentum - is attracting considerable interest. In a spin - orbit-coupled system, a non-zero spin current is predicted in a direction perpendicular to the applied electric field, giving rise to a spin Hall effect(2-4). Consistent with this effect, electrically induced spin polarization was recently detected by optical techniques at the edges of a semiconductor channel(5) and in two-dimensional electron gases in semiconductor heterostructures(6,7). Here we report electrical measurements of the spin Hall effect in a diffusive metallic conductor, using a ferromagnetic electrode in combination with a tunnel barrier to inject a spin-polarized current. In our devices, we observe an induced voltage that results exclusively from the conversion of the injected spin current into charge imbalance through the spin Hall effect. Such a voltage is proportional to the component of the injected spins that is perpendicular to the plane defined by the spin current direction and the voltage probes. These experiments reveal opportunities for efficient spin detection without the need for magnetic materials, which could lead to useful spintronics devices that integrate information processing and data storage.
机译:纳米结构中自旋极化电子的产生,操纵和检测定义了自旋电子学的主要挑战(1)。在产生自旋和操纵自旋的不同方法中,自旋-轨道耦合将电子的自旋与其动量耦合,引起了人们的极大兴趣。在自旋-轨道耦合系统中,在垂直于外加电场的方向上预测到非零自旋电流,从而产生自旋霍尔效应(2-4)。与此效应相一致,最近通过光学技术在半导体通道的边缘(5)和半导体异质结构中的二维电子气中检测到电感应的自旋极化(6,7)。在这里,我们报告了使用铁磁电极与隧道势垒相结合注入自旋极化电流时,在扩散金属导体中自旋霍尔效应的电学测量结果。在我们的设备中,我们观察到的感应电压完全是由于自旋霍尔效应将注入的自旋电流转换为电荷不平衡而产生的。这样的电压与注入的自旋分量成比例,该分量垂直于自旋电流方向和电压探针所定义的平面。这些实验揭示了无需磁性材料即可进行有效的自旋检测的机会,这可能会导致有用的自旋电子设备集成了信息处理和数据存储。

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