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通过具有纳米收缩工程的扶手椅型石墨烯纳米带中的光电流效应实现纯自旋电流。

Realizing pure spin current by the photogalvanic effect in armchair graphene nanoribbons with nano-constriction engineering.

作者信息

Li Yuejun, Shang Xiaofei, Zhou Yan-Hong, Zheng Xiaohong

机构信息

College of Science, East China Jiao Tong University, Nanchang 330013, China.

College of Information Science and Technology, Nanjing Forestry University, Nanjing 210037, China.

出版信息

Phys Chem Chem Phys. 2023 Jan 27;25(4):2890-2896. doi: 10.1039/d2cp05353e.

Abstract

We propose nano-constriction engineering of armchair graphene nanoribbons (AGNRs) to construct photoelectric nanodevices aiming to generate pure spin currents through the photogalvanic effect (PGE) using first-principles calculations. Two devices with different symmetries were designed, one by introducing only one isosceles zigzag triangle defect on the lower edge of the central region ('D1') and the other by two symmetrically distributed isosceles zigzag triangle defects on the two edges ('D2'). The results show that pure spin current without accompanying charge current can be generated in both junctions, but with a big difference that pure spin current can be generated only at special polarization angles = 0°, 90° and 180° in device D1, while it can be generated at any polarization angle in D2. The robustness in D2 is attributed to the spatial inversion symmetry in geometry and the inversion antisymmetry of spin density. These findings suggest that local magnetism engineering provides a reliable method for generating robust pure spin currents with the PGE in nonmagnetic systems, especially opening up new possibilities for the application of AGNRs in spintronics.

摘要

我们提出通过扶手椅型石墨烯纳米带(AGNRs)的纳米收缩工程来构建光电纳米器件,旨在利用第一性原理计算通过光生伏特效应(PGE)产生纯自旋电流。设计了两种具有不同对称性的器件,一种是在中心区域的下边缘仅引入一个等腰锯齿形三角形缺陷(“D1”),另一种是在两条边缘上对称分布两个等腰锯齿形三角形缺陷(“D2”)。结果表明,在两个结中都可以产生不伴随电荷电流的纯自旋电流,但存在很大差异,即在器件D1中仅在特殊极化角 = 0°、90°和180°时才能产生纯自旋电流,而在D2中可以在任何极化角产生。D2中的稳健性归因于几何结构中的空间反演对称性和自旋密度的反演反对称性。这些发现表明,局部磁性工程为在非磁性系统中利用PGE产生稳健的纯自旋电流提供了一种可靠的方法,特别是为AGNRs在自旋电子学中的应用开辟了新的可能性。

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