We study the charge and spin transport in two and four terminal graphene nanoribbons (GNR) decorated with random distribution of magnetic adatoms. The inclusion of the magnetic adatoms generates only the $z$-component of the spin polarized conductance via an exchange bias in the absence of Rashba spin-orbit interaction (SOI), while in presence of Rashba SOI, one is able to create all the three ($x$, $y$ and $z$) components. This has important consequences for possible spintronic applications. The charge conductance shows interesting behaviour near the zero of the Fermi energy. Where in presence of magnetic adatoms the familiar plateau at $2e^2/h$ vanishes, thereby transforming a quantum spin Hall insulating phase to an ordinary insulator. The local charge current and the local spin current provide an intuitive idea on the conductance features of the system. We found that, the local charge current is independent of Rashba SOI, while the three components of the local spin currents are sensitive to Rashba SOI. Moreover the fluctuations of the spin polarized conductance are found to be useful quantities as they show specific trends, that is, they enhance with increasing adatom densities. A two terminal GNR device seems to be better suited for possible spintronic applications.
翻译:我们研究电荷和旋转运输,在两四个终端石墨纳米核子(GNR)中安装了配有随机分配磁质的磁原子。在没有拉什巴旋转轨道互动的情况下,磁原子通过交换偏差,仅产生旋转极化导电流的z美元部分,而当着Rashba Sin-轨道互动(SOI)的面,我们能够创造出所有三个元、美元和z美元,这对可能的脊柱应用具有重要影响。充电导演导显示Fermi能源零位附近有趣的行为。在磁方阵列中,熟悉的2美元/h$高原消失,从而将量子旋转导电大厅转换成普通的隔热层。本地电流和本地旋转流提供了对系统行为特征的直观想法。我们发现,本地电流独立于Rashba SOI,而本地流的三个部分对Rashba SOI十分敏感。此外,在磁性顶端高空高的高度波动中,它们似乎能提升了固定的底级水平。