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Generation of THz-frequency electromagnetic signals in antiferromagnetic multilayered nanostructures biased by a spin current

机译:在自旋电流偏置的反铁磁多层纳米结构中产生太赫兹频率电磁信号

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There are several approaches to the THz-frequency generation, however the existing techniques require complex experimental setups and can not be realized even at micron-scale. In contradiction to this a thin antiferromagnetic nanostructure covered by a thin metal layer having the strong spin-orbital coupling and biased by a DC spin current can be used as nano-scale source of electromagnetic AC signals with frequencies close to the eigenfrequencies of the antiferromagnetic material (typically 0.1-10 THz). In this paper we theoretically analyze the efficiency of such a generator based on hematite and platinum layered nanostructures and estimate its output AC power. Our calculations show that the output AC power of the source could exceed several μW in the frequency range 1-3 THz, if the multilayered nanostructure is embedded in high-Q dielectric resonator.
机译:产生太赫兹频率的方法有几种,但是现有技术需要复杂的实验装置,即使在微米级也无法实现。与此相反,可以将由具有强自旋轨道耦合并且被直流自旋电流偏置的薄金属层覆盖的薄反铁磁纳米结构用作频率接近于反铁磁材料的本征频率的电磁AC信号的纳米级源。 (通常为0.1-10 THz)。在本文中,我们从理论上分析了基于赤铁矿和铂层状纳米结构的此类发电机的效率,并估算了其输出交流电。我们的计算表明,如果将多层纳米结构嵌入到高Q介电谐振器中,则在1-3 THz的频率范围内,源的输出AC功率可能会超过数μW。

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