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具有单一结构的双向太赫兹传输与反射编码超表面

Transmission and reflection bi-direction terahertz encoding metasurface with a single structure.

作者信息

Li Jiu-Sheng, Yang Li-Jing

出版信息

Opt Express. 2021 Oct 11;29(21):33760-33770. doi: 10.1364/OE.439609.

Abstract

Most reported metasurfaces operate in single propagation direction mode (either transmissive mode or reflective mode), which hamper practical application. Here, we proposed a bi-directional operation coding metasurface based on a phase change material of a vanadium dioxide (VO) assisted metasurface. It can realize a dynamically invertible switch between the transmissive mode or reflective mode in the terahertz regime by changing the external ambient temperature. The proposed structure consists of a silicon column, polyimide dielectric substrate layer, and VO film bottom layer. When VO is in dielectric state, the designed metasurface possesses the functions of transmission beam splitting and deflection and generates a transmission vortex beam. When VO is in metallic state, the proposed metasurface exhibits many functions such as reflection beam splitting, deflection, radar scattering surface (RCS) reduction and reflection vortex beam generation. The proposed metasurface can solve transmissive and reflective bi-direction terahertz encoding regulation. This scheme provides a new method to realize multi-function terahertz devices.

摘要

大多数已报道的超表面工作在单一传播方向模式(透射模式或反射模式),这阻碍了实际应用。在此,我们提出了一种基于二氧化钒(VO)辅助超表面的相变材料的双向操作编码超表面。通过改变外部环境温度,它可以在太赫兹频段实现透射模式和反射模式之间的动态可逆切换。所提出的结构由硅柱、聚酰亚胺介电基底层和VO薄膜底层组成。当VO处于介电状态时,设计的超表面具有透射光束分裂和偏转功能,并产生透射涡旋光束。当VO处于金属状态时,所提出的超表面展现出许多功能,如反射光束分裂、偏转、雷达散射截面(RCS)减小和反射涡旋光束产生。所提出的超表面可以解决透射和反射双向太赫兹编码调控问题。该方案为实现多功能太赫兹器件提供了一种新方法。

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