论文标题

机械弯曲包括在能剂纳米龙和可调节激子状态的机械弯曲中包括的自旋极化各向异性

Spin-polarization anisotropy included by mechanical bending in tungsten diselenide nanoribbons and tunable excitonic states

论文作者

Tang, Hong, Neupane, Santosh, Yin, Li, Breslin, Jason M., Ruzsinszky, Adrienn

论文摘要

WSE $ _2 $单层显示出许多有趣的属性,这是由于其自旋轨道耦合诱导的旋转旋转分裂在Fermi级别附近的带和自旋Valley配置。相关带中自旋极化的方向对于激子状态的性质和光谷的选择性至关重要。在这项工作中,我们研究了具有密度功能理论的不同机械弯曲曲率和电子/孔掺杂下的WSE $ _2 $纳米管,其光学理论及其光吸收和具有多体扰动GW和BSE(Bethe-Salpeter方程)方法的激子状态。我们发现,WSE $ _2 $纳米骨可以表现出增强的SOC效果,并且在弯曲下,在费米级别附近的频段中,空间上的自旋极化在空间上变化。自旋极化可以在那些近乎退化的带中显示各向异性(或不对称性),从而通过弯曲和电子/孔掺杂纳米骨,从而导致可控的磁性,这表明潜在的紧凑型和可控的磁性纳米台词和纺纱剂具有潜在的应用。纳米替比的光吸收光谱在约0.4至1.5 eV的近红外区域内具有较大的可调性,在较大的弯曲条件下显示出增强的吸收。激子状态通常在电子和孔对中表现出混合或各种自旋构型,这些构型由弯曲控制,可能对基于自旋的量子信息过程的应用有用。

A WSe$_2$ monolayer shows many interesting properties due to its spin-orbit coupling induced spin splitting in bands around the Fermi level and the spin-valley configuration. The orientation of the spin polarization in the relevant bands is crucial for the nature of exciton states and the optical valley selectivity. In this work, we studied the WSe$_2$ nanoribbons under different mechanical bending curvatures and electron/hole doping with density functional theory and their optical absorption and excitonic states with many-body perturbation GW and BSE (Bethe-Salpeter equation) methods. We found that the WSe$_2$ nanoribbons can exhibit an enhanced SOC effect and a spatially varying spin polarization in bands around the Fermi level under bending. The spin-polarization can show an anisotropy (or asymmetry) in those nearly degenerate bands, leading to a controllable magnetism via bending and electron/hole doping to the nanoribbons, suggesting a potential application in compact and controllable magnetic nanodevices and spintronics. The optical absorption spectrum of the nanoribbon presents a large tunability with bending within the near infrared region of about 0.4 to 1.5 eV, showing an enhanced absorption at a large bending condition. The exciton states generally show mixed or various spin configuration in the electron and hole pairs that are controlled by bending, potentially useful for applications in spin-based quantum information processes.

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