Luo Li, Liu Xiao, Duan Shouxin, Li Hui, Xu Hang, Peng Sui, Liu Bo, Wang Yuting, Wang Lingzhi, Zou Yuxin, Li Jie, Shen Yun, Yao Jianquan
Information Materials and Device Applications Key Laboratory of Sichuan Provincial Universities, Chengdu University of Information Technology, Chengdu 610225, China.
Department of Physics, School of Physics and Materials Science, Nanchang University, Nanchang 330031, China.
Nanophotonics. 2023 Sep 22;12(19):3839-3848. doi: 10.1515/nanoph-2023-0457. eCollection 2023 Sep.
The research on terahertz wave manipulation based on metasurfaces has gradually deepened, and the number of functions or electromagnetic control dimensions in a single device is constantly increasing. For the spatial dimension of terahertz field regulation, its design degrees of freedom have been expanded from a single transverse plane to the propagation path. In this paper, we propose a novel circularly polarization multiplexed metasurface for dual channel terahertz wave transmission control. Based on the spatial integration of two heterogeneous meta-atoms, which are spin-decoupled and isotropic, respectively, there are four phase channels that can be used at the same time, thus achieving different switching between vector and scalar beams in different circularly polarization channels along the optical path. For linearly polarized wave incidence, the device exhibits conversion between different vector beams longitudinally. To control more electric field components, we combine focused wavefront design with vector or scalar fields and utilize the focusing induced spin-orbit coupling effect, then complex amplitude switching of longitudinal electric field components is obtained. This article extends the manipulation of terahertz waves along the propagation trajectory based on metasurface from single to dual channel for the first time, providing a reference for the design of multifunctional meta-device in terahertz band.
基于超表面的太赫兹波操控研究逐渐深入,单个器件中的功能数量或电磁控制维度不断增加。对于太赫兹场调控的空间维度,其设计自由度已从单一横向平面扩展到传播路径。本文提出了一种用于双通道太赫兹波传输控制的新型圆极化复用超表面。基于分别自旋解耦和各向同性的两种异质元原子的空间集成,有四个相位通道可同时使用,从而在沿光路的不同圆极化通道中实现矢量光束和标量光束之间的不同切换。对于线偏振波入射,该器件纵向呈现不同矢量光束之间的转换。为了控制更多电场分量,我们将聚焦波前设计与矢量或标量场相结合,并利用聚焦诱导的自旋 - 轨道耦合效应,进而获得纵向电场分量的复振幅切换。本文首次将基于超表面的太赫兹波沿传播轨迹的操控从单通道扩展到双通道,为太赫兹波段多功能超器件的设计提供了参考。