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基于具有堆叠石墨烯层的磁光P-B超表面的有源太赫兹光束偏转和非互易自旋手性选择

Active terahertz beam deflection and nonreciprocal spin chirality selection based on magneto-optical P-B metasurface with stacked-graphene layers.

作者信息

Zhao Dan, Tan Zhiyu, Zhao Huijun, Fan Fei, Chang Shengjiang

出版信息

Opt Lett. 2022 Feb 15;47(4):818-821. doi: 10.1364/OL.446702.

DOI:10.1364/OL.446702
PMID:35167533
Abstract

Multifunctional, high-efficiency, and active manipulation devices are significant for terahertz (THz) technology and application. In this Letter, a stacked-graphene meta-atom (SGM) structure is investigated, which is composed of periodically patterned graphene in the 2D plane and stacked graphene-dielectric layers perpendicularly to the plane. This structure not only has strong THz artificial anisotropy but also enhances the cyclotron resonance response of graphene to a THz wave under an external magnetic field (EMF). Based on these two characteristics, the SGM can realize dynamic conversion between two functions for the manipulation of THz spin chiral states under different EMFs: from the reciprocal spin-flip without EMF to nonreciprocal spin-selection with EMF. Furthermore, a Pancharatnam-Berry (P-B) metasurface composed of the SGMs with different discrete orientation angles has been designed, which achieves active conversion between THz spin chiral beam deflection and the nonreciprocal one-way transmission for two conjugated spin beams, dynamically manipulated by both the biased voltage and EMF. The spin-select isolation is 42.3 dB with a transmission efficiency of over 70% at 1.38 THz. This manipulation mechanism of the spin beam and related devices has great potential in future THz communication, dynamical imaging, and radar scanning systems.

摘要

多功能、高效且有源的操控器件对太赫兹(THz)技术及应用具有重要意义。在本信函中,研究了一种堆叠石墨烯元原子(SGM)结构,它由二维平面中周期性图案化的石墨烯以及垂直于该平面的堆叠石墨烯 - 电介质层组成。这种结构不仅具有很强的太赫兹人工各向异性,而且在外部磁场(EMF)作用下增强了石墨烯对太赫兹波的回旋共振响应。基于这两个特性,SGM能够在不同的外部磁场下实现两种功能之间的动态转换,用于操控太赫兹自旋手性态:从无外部磁场时的互易自旋翻转到有外部磁场时的非互易自旋选择。此外,设计了一种由具有不同离散取向角的SGM组成的庞加莱 - 贝里(P - B)超表面,它实现了太赫兹自旋手性光束偏转与两个共轭自旋光束的非互易单向传输之间的有源转换,可通过偏置电压和外部磁场进行动态操控。在1.38太赫兹时,自旋选择隔离度为42.3分贝,传输效率超过70%。这种自旋光束的操控机制及相关器件在未来太赫兹通信、动态成像和雷达扫描系统中具有巨大潜力。

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