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狄拉克半金属中的电控自旋极化电流。

Electrically controlled spin polarized current in Dirac semimetals.

作者信息

Lv Qianqian, Fu Pei-Hao, Yu Xiang-Long, Liu Jun-Feng, Wu Jiansheng

机构信息

Department of Physics, Harbin Institute of Technology, Harbin, 150001, China.

Department of Physics, Southern University of Science and Technology, Shenzhen, 518055, China.

出版信息

Sci Rep. 2021 Nov 2;11(1):21509. doi: 10.1038/s41598-021-01067-y.

Abstract

We propose a highly tunable [Formula: see text] spin-polarized current generated in a spintronic device based on a Dirac semimetal (DSM) under a magnetic field, which can be achieved merely by controlling electrical parameters, i.e. the gate voltage, the chemical potential in the lead and the coupling strength between the leads and the DSM. These parameters are all related to the special properties of a semimetal. The spin polarized current generated by gate voltage is guaranteed by its semimetallic feature, because of which the density of state vanishes near Dirac nodes. The barrier controlled current results from the different distance of Weyl nodes generated by the Zeeman field. And the coupling strength controlled spin polarized current originates from the surface Fermi arcs. This DSM-based spintronic device is expected to be realized in [Formula: see text] experimentally.

摘要

我们提出了一种在磁场作用下基于狄拉克半金属(DSM)的自旋电子器件中产生的高度可调谐的[公式:见正文]自旋极化电流,这仅通过控制电学参数即可实现,即栅极电压、引线中的化学势以及引线与DSM之间的耦合强度。这些参数都与半金属的特殊性质有关。由栅极电压产生的自旋极化电流由其半金属特性保证,因为在狄拉克节点附近态密度消失。由塞曼场产生的不同距离的外尔节点导致了势垒控制电流。而耦合强度控制的自旋极化电流源于表面费米弧。这种基于DSM的自旋电子器件有望在[公式:见正文]实验中实现。

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