Liang F, Yang Y H, Wang J, Chan K S
Department of Physics, Southeast University, Nanjing 210096, People's Republic of China.
J Phys Condens Matter. 2009 Dec 2;21(48):485304. doi: 10.1088/0953-8984/21/48/485304. Epub 2009 Nov 6.
The Keldysh Green's function method is employed to study spin-dependent electron transport through a Rashba ring with a quantum dot (QD) embedded in one of its arms. Zero charge bias is applied on the system while a rotating magnetic field is considered in the QD to pump pure spin current. The Rashba spin-orbital coupling (RSOC) can cause a spin precession phase of the electron passing through the ring, so that the quantum interference in the ring can lead to a spin-polarized charge current flowing in the leads and the arm without a QD, whereas only pure spin current is flowing in the other arm with a QD. It is shown that for low frequency ω of the rotating magnetic field, the pumped charge current is proportional to ω unlike the charge current produced by mono-parametric quantum charge pumping, which is usually proportional to ω(2). Moreover, the magnitude, the direction, as well as the spin-polarization of the charge current can be controlled by tuning the device parameters such as the QD energy level, the RSOC strength, and the strength of the electron tunneling between the leads and the QD. Hence the studied device may serve as a generating source for tunable spin-polarized current in the spintronics field.
采用凯尔迪什格林函数方法研究了自旋相关电子通过一个臂中嵌入量子点(QD)的Rashba环的输运。对系统施加零电荷偏置,同时在量子点中考虑旋转磁场以泵浦纯自旋电流。Rashba自旋轨道耦合(RSOC)会导致电子通过环时的自旋进动相位,从而环中的量子干涉可导致自旋极化的电荷电流在引线和没有量子点的臂中流动,而在有量子点的另一臂中仅流动纯自旋电流。结果表明,对于旋转磁场的低频ω,泵浦的电荷电流与ω成正比,这与单参数量子电荷泵产生的电荷电流不同,后者通常与ω²成正比。此外,通过调整诸如量子点能级、RSOC强度以及引线与量子点之间的电子隧穿强度等器件参数,可以控制电荷电流的大小、方向以及自旋极化。因此,所研究的器件可作为自旋电子学领域中可调谐自旋极化电流的产生源。