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首页> 外文期刊>Current applied physics: the official journal of the Korean Physical Society >Effect of electric field and magnetic field on spin transport in bilayer graphene armchair nanoribbons: A Monte Carlo simulation study
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Effect of electric field and magnetic field on spin transport in bilayer graphene armchair nanoribbons: A Monte Carlo simulation study

机译:电场和磁场对双层石墨烯扶手椅纳米带自旋输运的影响:蒙特卡洛模拟研究

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摘要

a b s t r a c t In this article we study the effect of external magnetic field and electric field on spin transport in bilayer armchair graphene nanoribbons (GNR) by employing semiclassical Monte Carlo approach. We include D'yakonov-Perel' (DP) relaxation due to structural inversion asymmetry (Rashba spin-orbit coupling) and Elliott-Yafet (EY) relaxation to model spin dephasing. In the model we neglect the effect of local magnetic moments due to adatoms and vacancies. We have considered injection polarization along z-direction perpendicular to the plane of graphene and the magnitude of ensemble averaged spin variation is studied along the x-direction which is the transport direction. To the best of our knowledge there has been no theoretical investigation of the effects of external magnetic field on spin transport in graphene nanoribbons. This theoretical investigation is important in order to identify the factors responsible for experimentally observed spin relaxation length in graphene GNRs.
机译:在本文中,我们使用半经典蒙特卡洛方法研究了双层扶手椅石墨烯纳米带(GNR)中外部磁场和电场对自旋输运的影响。由于结构反演不对称(Rashba自旋-轨道耦合)和Elliott-Yafet(EY)弛豫,我们将D'yakonov-Perel'(DP)弛豫建模为自旋相移。在模型中,我们忽略了由于原子和空位而引起的局部磁矩的影响。我们考虑了沿垂直于石墨烯平面的z方向的注入极化,并研究了沿x方向(即传输方向)的整体平均自旋变化幅度。据我们所知,还没有理论研究外部磁场对石墨烯纳米带中自旋传输的影响。为了确定石墨烯GNR中实验观察到的自旋弛豫长度的因素,这一理论研究很重要。

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