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Nanowire spin torque oscillator driven by spin orbit torques

机译:自旋轨道扭矩驱动的纳米线自旋扭矩振荡器

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摘要

Spin torque from spin current applied to a nanoscale region of a ferromagnet can act as negative magnetic damping and thereby excite self-oscillations of its magnetization. In contrast, spin torque uniformly applied to the magnetization of an extended ferromagnetic film does not generate self-oscillatory magnetic dynamics but leads to reduction of the saturation magnetization. Here we report studies of the effect of spin torque on a system of intermediate dimensionality-a ferromagnetic nanowire. We observe coherent self-oscillations of magnetization in a ferromagnetic nanowire serving as the active region of a spin torque oscillator driven by spin orbit torques. Our work demonstrates that magnetization self-oscillations can be excited in a one-dimensional magnetic system and that dimensions of the active region of spin torque oscillators can be extended beyond the nanometre length scale.
机译:来自施加到铁磁体纳米级区域的自旋电流的自旋转矩可充当负磁阻尼,从而激发其磁化的自激振荡。相反,均匀地施加于延伸的铁磁膜的磁化的自旋转矩不会产生自激磁动力学,而是导致饱和磁化强度降低。在这里,我们报告自旋转矩对中等尺寸系统(铁磁纳米线)的影响的研究。我们观察到铁磁纳米线中的磁化的相干自激振荡,它是由自旋轨道转矩驱动的自旋转矩振荡器的有源区域。我们的工作表明,在一维磁性系统中可以激发磁化自激振荡,并且自旋转矩振荡器的有源区域的尺寸可以扩展到纳米级以上。

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