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磁性隧道结中的自旋扭矩二极管效应。

Spin-torque diode effect in magnetic tunnel junctions.

作者信息

Tulapurkar A A, Suzuki Y, Fukushima A, Kubota H, Maehara H, Tsunekawa K, Djayaprawira D D, Watanabe N, Yuasa S

机构信息

Nanoelectronics Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba 305-8568, Japan.

出版信息

Nature. 2005 Nov 17;438(7066):339-42. doi: 10.1038/nature04207.

Abstract

There is currently much interest in the development of 'spintronic' devices, in which harnessing the spins of electrons (rather than just their charges) is anticipated to provide new functionalities that go beyond those possible with conventional electronic devices. One widely studied example of an effect that has its roots in the electron's spin degree of freedom is the torque exerted by a spin-polarized electric current on the spin moment of a nanometre-scale magnet. This torque causes the magnetic moment to rotate at potentially useful frequencies. Here we report a very different phenomenon that is also based on the interplay between spin dynamics and spin-dependent transport, and which arises from unusual diode behaviour. We show that the application of a small radio-frequency alternating current to a nanometre-scale magnetic tunnel junction can generate a measurable direct-current (d.c.) voltage across the device when the frequency is resonant with the spin oscillations that arise from the spin-torque effect: at resonance (which can be tuned by an external magnetic field), the structure exhibits different resistance states depending on the direction of the current. This behaviour is markedly different from that of a conventional semiconductor diode, and could form the basis of a nanometre-scale radio-frequency detector in telecommunication circuits.

摘要

目前,人们对“自旋电子学”器件的开发兴趣浓厚,在这类器件中,利用电子的自旋(而非仅仅是其电荷)有望提供超越传统电子器件所能实现的新功能。一个根源在于电子自旋自由度的效应的广泛研究示例是自旋极化电流对纳米级磁体自旋矩施加的转矩。该转矩会使磁矩以潜在有用的频率旋转。在此,我们报告一种截然不同的现象,它同样基于自旋动力学与自旋相关输运之间的相互作用,且源于不寻常的二极管行为。我们表明,当向纳米级磁性隧道结施加小的射频交流电,且频率与自旋转矩效应产生的自旋振荡共振时,可在器件两端产生可测量的直流(d.c.)电压:在共振时(可通过外部磁场调节),该结构根据电流方向呈现不同的电阻状态。这种行为与传统半导体二极管的行为显著不同,并且可能构成电信电路中纳米级射频探测器的基础。

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