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基于自旋轨道耦合的磁动力学电荷泵。

Magnonic charge pumping via spin-orbit coupling.

机构信息

Cavendish Laboratory, University of Cambridge, Cambridge CB3 0HE, UK.

1] Department of Physics, Norwegian University of Science and Technology, NO-7491, Trondheim, Norway [2] Niels Bohr International Academy and the Center for Quantum Devices, Niels Bohr Institute, University of Copenhagen, 2100 Copenhagen, Denmark.

出版信息

Nat Nanotechnol. 2015 Jan;10(1):50-4. doi: 10.1038/nnano.2014.252. Epub 2014 Nov 10.

Abstract

The interplay between spin, charge and orbital degrees of freedom has led to the development of spintronic devices such as spin-torque oscillators and spin-transfer torque magnetic random-access memories. In this development, spin pumping represents a convenient way to electrically detect magnetization dynamics. The effect originates from direct conversion of low-energy quantized spin waves in the magnet, known as magnons, into a flow of spins from the precessing magnet to adjacent leads. In this case, a secondary spin-charge conversion element, such as heavy metals with large spin Hall angle or multilayer layouts, is required to convert the spin current into a charge signal. Here, we report the experimental observation of charge pumping in which a precessing ferromagnet pumps a charge current, demonstrating direct conversion of magnons into high-frequency currents via the relativistic spin-orbit interaction. The generated electric current, unlike spin currents generated by spin-pumping, can be directly detected without the need of any additional spin-charge conversion mechanism. The charge-pumping phenomenon is generic and gives a deeper understanding of its reciprocal effect, the spin orbit torque, which is currently attracting interest for their potential in manipulating magnetic information.

摘要

自旋、电荷和轨道自由度之间的相互作用导致了自旋电子器件的发展,如自旋-扭矩振荡器和自旋转移扭矩磁随机存取存储器。在这一发展过程中,自旋泵浦代表了一种方便的电检测磁化动力学的方法。这种效应源于磁体中低能量子化自旋波(称为磁振子)直接转换为自旋流,从进动磁体流向相邻的引线。在这种情况下,需要一个二次自旋-电荷转换元件,如具有大自旋霍尔角的重金属或多层结构,将自旋流转换为电荷信号。在这里,我们报告了电荷泵浦的实验观察,其中进动铁磁体泵浦电荷电流,证明了通过相对论自旋轨道相互作用,将磁振子直接转换为高频电流。与由自旋泵浦产生的自旋电流不同,所产生的电流可以直接检测,而不需要任何额外的自旋-电荷转换机制。电荷泵浦现象是通用的,并加深了对其互反效应的理解,即自旋轨道扭矩,目前因其在操纵磁信息方面的潜力而引起关注。

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