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Rashba Spin-Orbit Anisotropy and the Electric Field Control of Magnetism

机译:Rashba自旋轨道各向异性与磁场的电场控制

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摘要

The control of the magnetism of ultra-thin ferromagnetic layers using an electric field, rather than a current, has many potential technologically important applications. It is usually insisted that such control occurs via an electric field induced surface charge doping that modifies the magnetic anisotropy. However, it remains the case that a number of key experiments cannot be understood within such a scenario. Much studied is the spin-splitting of the conduction electrons of non-magnetic metals or semi-conductors due to the Rashba spin-orbit coupling. This reflects a large surface electric field. For a magnet, this same splitting is modified by the exchange field resulting in a large magnetic anisotropy energy via the Dzyaloshinskii-Moriya mechanism. This different, yet traditional, path to an electrically induced anisotropy energy can explain the electric field, thickness, and material dependence reported in many experiments.
机译:使用电场而不是电流来控制超薄铁磁层的磁性具有许多潜在的重要技术应用。通常坚持认为,这种控制是通过电场感应的表面电荷掺杂来进行的,该掺杂改变了磁各向异性。但是,仍然存在无法在这种情况下理解许多关键实验的情况。由于Rashba自旋轨道耦合,对非磁性金属或半导体的导电电子进行了自旋分裂研究。这反映了大的表面电场。对于磁体,这种相同的分裂会通过交换磁场而改变,这将通过Dzyaloshinskii-Moriya机制产生较大的磁各向异性能。这种通往电各向异性能量的不同但传统的途径可以解释许多实验中报道的电场,厚度和材料依赖性。

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