Ultra-broadband and wide-angle terahertz polarization converter based on symmetrical anchor-shaped metamaterial

被引:32
|
作者
Zou, Mengqiang [1 ]
Su, Miyong [1 ]
Yu, Hua [1 ]
机构
[1] Guilin Univ Elect Technol, Acad Marine Engn, Beihai 536000, Peoples R China
关键词
Terahertz; Metamaterial; Polarization converter; Wide angle; SPECTROSCOPY; METASURFACE;
D O I
10.1016/j.optmat.2020.110062
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We propose a reflective terahertz metamaterial linear polarization converter, consisting of three layers: an array of metallic symmetrical anchor-shaped resonators, poly tetra fluoroethylene (PTFE) as a low loss dielectric layer, and a metal surface ground plane. The simulation results show that the proposed metamaterial can convert the linearly polarized waves into the cross-polarized waves with a polarization conversion ratio (PCR) of above 93% in the frequency range of 1.21-2.83 THz and the relative bandwidth is as high as 80.2%. The proposed metamaterial is valid for a wide range of incident angles, and the average polarization conversion ratio remains 93% even though the incident angle reaches 45 degrees. Additionally, we theoretically analyzed the conversion mechanism of achieving a high-efficiency linear polarization conversion in a wide frequency range by calculating the polarization angle and elliptical angle of the reflected terahertz waves. The experiment results using the terahertz time domain spectroscopy (THz-TDS) consist well with the simulation results. Our design will provide an important reference for the practical applications of the metamaterials in polarization manipulation.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Ultra-broadband and polarization-insensitive wide-angle terahertz metamaterial absorber
    Li, Xinwang
    Liu, Hongjun
    Sun, Qibing
    Huang, Nan
    PHOTONICS AND NANOSTRUCTURES-FUNDAMENTALS AND APPLICATIONS, 2015, 15 : 81 - 88
  • [2] Ultra-broadband wide-angle linear polarization converter based on H-shaped metasurface
    Xu, Jin
    Li, Rongqiang
    Qin, Jin
    Wang, Shenyun
    Han, Tiancheng
    OPTICS EXPRESS, 2018, 26 (16): : 20913 - 20919
  • [3] Ultra-broadband wide-angle terahertz absorber realized by a doped silicon metamaterial
    Jiang, Mingwei
    Song, Zhengyong
    Liu, Qing Huo
    OPTICS COMMUNICATIONS, 2020, 471
  • [4] Water metamaterial for ultra-broadband and wide-angle absorption
    Xie, Jianwen
    Zhu, Weiren
    Rukhlenko, Ivan D.
    Xiao, Fajun
    He, Chong
    Geng, Junping
    Liang, Xianling
    Jin, Ronghong
    Premaratne, Malin
    OPTICS EXPRESS, 2018, 26 (04): : 5052 - 5059
  • [5] Wide-Angle Ultra-Broadband Metamaterial Absorber with Polarization-Insensitive Characteristics
    Chen, Peng
    Kong, Xianglin
    Han, Jianfei
    Wang, Weihua
    Han, Kui
    Ma, Hongyu
    Zhao, Lei
    Shen, Xiaopeng
    CHINESE PHYSICS LETTERS, 2021, 38 (02)
  • [6] Wide-Angle Ultra-Broadband Metamaterial Absorber with Polarization-Insensitive Characteristics
    陈鹏
    孔祥林
    韩建飞
    王伟华
    韩奎
    马洪宇
    赵雷
    沈晓鹏
    Chinese Physics Letters, 2021, 38 (02) : 139 - 142
  • [7] Ultra-broadband and wide-angle reflective terahertz polarization conversion metasurface based on topological optimization
    Zhang, Ya-Jie
    Li, Chao-Long
    Luan, Jia-Qi
    Zhao, Ming
    Gao, Ding-Shan
    Li, Pei-Li
    CHINESE PHYSICS B, 2024, 33 (10)
  • [8] Ultra-broadband and wide-angle reflective terahertz polarization conversion metasurface based on topological optimization
    张亚杰
    李潮龙
    栾迦淇
    赵茗
    郜定山
    李培丽
    Chinese Physics B, 2024, 33 (10) : 328 - 336
  • [9] Highly Efficient, Ultra-broadband and Wide-angle Cross Polarization Converter based on Anisotropic Metasurface
    Ahmad, Tauqir
    Rahim, Arbab Abdur
    Bilal, Rana Muhammad Hasan
    Noor, Adnan
    Maab, Husnul
    2021 1ST INTERNATIONAL CONFERENCE ON MICROWAVE, ANTENNAS & CIRCUITS (ICMAC), 2021,
  • [10] An ultra-broadband and wide-angle absorber based on a TiN metamaterial for solar harvesting
    Sun, Chunlei
    Liu, Haotuo
    Yang, Bing
    Zhang, Kaihua
    Zhang, Bin
    Wu, Xiaohu
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2022, 25 (01) : 806 - 812