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基于第一性原理计算的量子自旋霍尔边缘态诱导的光电流效应。

The photogalvanic effect induced by quantum spin Hall edge states from first-principles calculations.

机构信息

State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Shanxi University, Taiyuan 030006, China.

Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan 030006, China.

出版信息

Phys Chem Chem Phys. 2023 Jun 21;25(24):16363-16370. doi: 10.1039/d3cp00695f.

Abstract

Based on non-equilibrium Green's function combined with density functional theory (NEGF-DFT), we theoretically investigate the spin-related photogalvanic effect (PGE) in topological insulators BiBr and SbBr nanoribbons from atomic first-principles calculations. It is demonstrated that the PGE generated photocurrents by quantum spin Hall edge states (QSHES) are in general pure spin currents due to the presence of time reversal and mirror symmetries, which is independent of the photon energies, polarization, and incident angles. Although the QSHES are topologically protected and robust against defects and impurities during their transport, the spin photocurrent generated by these edge states the PGE is particularly sensitive to defects. By tuning the defect position of the nanoribbons, the magnitude of spin related photocurrent generated by the PGE can be significantly increased compared with that in pristine nanoribbons. Our work not only reveals the defect effect of PGE but also demonstrates the great potential of defect engineered topological insulator nanoribbons for novel application in two-dimensional opto-spintronic devices.

摘要

基于非平衡格林函数结合密度泛函理论(NEGF-DFT),我们从原子的第一性原理计算出发,理论上研究了拓扑绝缘体 BiBr 和 SbBr 纳米带中的自旋相关光电压效应(PGE)。结果表明,由于时间反演和镜像对称性的存在,由量子自旋霍尔边缘态(QSHES)产生的 PGE 光电流通常是纯自旋电流,与光子能量、偏振和入射角无关。尽管 QSHES 在传输过程中受到拓扑保护且对缺陷和杂质具有鲁棒性,但这些边缘态产生的自旋光电流 PGE 对缺陷特别敏感。通过调整纳米带的缺陷位置,与原始纳米带相比,PGE 产生的自旋相关光电流的幅度可以显著增加。我们的工作不仅揭示了 PGE 的缺陷效应,还展示了缺陷工程拓扑绝缘体纳米带在二维光电自旋电子器件中的新型应用的巨大潜力。

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