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自旋轨道耦合纳米结构中自旋的可控空间分离和相干动力学。

Controlled spatial separation of spins and coherent dynamics in spin-orbit-coupled nanostructures.

机构信息

Department of Physics, National Cheng Kung University, Tainan 701, Taiwan.

Cavendish Laboratory, J J Thomson Avenue, Cambridge CB3 0HE, UK.

出版信息

Nat Commun. 2017 Jul 10;8:15997. doi: 10.1038/ncomms15997.

Abstract

The spatial separation of electron spins followed by the control of their individual spin dynamics has recently emerged as an essential ingredient in many proposals for spin-based technologies because it would enable both of the two spin species to be simultaneously utilized, distinct from most of the current spintronic studies and technologies wherein only one spin species could be handled at a time. Here we demonstrate that the spatial spin splitting of a coherent beam of electrons can be achieved and controlled using the interplay between an external magnetic field and Rashba spin-orbit interaction in semiconductor nanostructures. The technique of transverse magnetic focusing is used to detect this spin separation. More notably, our ability to engineer the spin-orbit interactions enables us to simultaneously manipulate and probe the coherent spin dynamics of both spin species and hence their correlation, which could open a route towards spintronics and spin-based quantum information processing.

摘要

电子自旋的空间分离,随后对其各自自旋动力学的控制,最近已成为许多基于自旋技术的提案中的重要组成部分,因为它将使两种自旋种类能够同时被利用,这与大多数当前的自旋电子学研究和技术不同,在这些研究和技术中,一次只能处理一种自旋种类。在这里,我们证明了在外磁场和半导体纳米结构中的 Rashba 自旋轨道相互作用的相互作用下,可以实现和控制相干电子束的自旋分裂。横向磁场聚焦技术用于探测这种自旋分离。更值得注意的是,我们能够设计自旋轨道相互作用的能力使我们能够同时操纵和探测两种自旋种类的相干自旋动力学及其相关性,这可能为自旋电子学和基于自旋的量子信息处理开辟一条道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c95/5508128/767018668b4c/ncomms15997-f1.jpg

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