• Photonics Research
  • Vol. 9, Issue 4, 567 (2021)
Jie Li1、†, Chenglong Zheng1、†, Guocui Wang2、3, Jitao Li1, Hongliang Zhao1, Yue Yang1, Zhang Zhang1, Maosheng Yang4, Liang Wu1, Jining Li1, Yating Zhang1、5、*, Yan Zhang2, and Jianquan Yao1、6、*
Author Affiliations
  • 1Key Laboratory of Opto-Electronics Information Technology (Tianjin University), Ministry of Education, School of Precision Instruments and Opto-Electronics Engineering, Tianjin University, Tianjin 300072, China
  • 2Beijing Key Laboratory for Metamaterials and Devices, Key Laboratory of Terahertz Optoelectronics, Ministry of Education, and Beijing Advanced Innovation Center for Imaging Technology, Department of Physics, Capital Normal University, Beijing 100048, China
  • 3Beijing Engineering Research Center for Mixed Reality and Advanced Display, School of Optics and Photonics, Beijing Institute of Technology, Beijing 100081, China
  • 4School of Mechanical Engineering, Jiangsu University, Zhenjiang 225009, China
  • 5e-mail: yating@tju.edu.cn
  • 6e-mail: jqyao@tju.edu.cn
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    DOI: 10.1364/PRJ.415547 Cite this Article Set citation alerts
    Jie Li, Chenglong Zheng, Guocui Wang, Jitao Li, Hongliang Zhao, Yue Yang, Zhang Zhang, Maosheng Yang, Liang Wu, Jining Li, Yating Zhang, Yan Zhang, Jianquan Yao. Circular dichroism-like response of terahertz wave caused by phase manipulation via all-silicon metasurface[J]. Photonics Research, 2021, 9(4): 567 Copy Citation Text show less
    Schematic diagram of the metasurface which can independently control the phase of two circularly polarized incident waves. The cells are cross-shaped elliptical columns; both the cells and the substrate are made of high-resistance silicon.
    Fig. 1. Schematic diagram of the metasurface which can independently control the phase of two circularly polarized incident waves. The cells are cross-shaped elliptical columns; both the cells and the substrate are made of high-resistance silicon.
    Simulation and results selection of the geometric parameters of meta-atoms. (a) Schematic diagram of the units. (b)–(e) The transmission amplitudes and phase shifts of the silicon cylinder for x- and y-polarized terahertz waves with different values of Lx and Ly. (f), (g) The selected 64 sets of Ly and Lx values, in which the phases are divided into eight values at intervals of 45 deg.
    Fig. 2. Simulation and results selection of the geometric parameters of meta-atoms. (a) Schematic diagram of the units. (b)–(e) The transmission amplitudes and phase shifts of the silicon cylinder for x- and y-polarized terahertz waves with different values of Lx and Ly. (f), (g) The selected 64 sets of Ly and Lx values, in which the phases are divided into eight values at intervals of 45 deg.
    Phase design of the metasurface with circular dichroism-like effect consists of 140×140 units. (a) The phase matrices consist of equal elements or pseudorandom numbers (submatrix with equal elements). (b) The phase distributions corresponding to the phase matrices (in π/4). (c)–(f) Far-field patterns of the metasurfaces with phase distributions of a constant or a random number matrix.
    Fig. 3. Phase design of the metasurface with circular dichroism-like effect consists of 140×140 units. (a) The phase matrices consist of equal elements or pseudorandom numbers (submatrix with equal elements). (b) The phase distributions corresponding to the phase matrices (in π/4). (c)–(f) Far-field patterns of the metasurfaces with phase distributions of a constant or a random number matrix.
    Morphology characterization and transmission spectrum of the metasurface. (a) Optical photograph and scanning electron microscope (SEM) images of sample 1. (b) Simulated two-dimensional electric field and phase distributions of the transmitted LCP and RCP waves. (c) Terahertz polarization measurement time-domain spectroscopy system. (d) Simulation results of the TCD spectrum for metasurfaces with different numbers of units. (e)–(j) Experiment results of the linear and circular polarization transmission coefficients and TCD spectra.
    Fig. 4. Morphology characterization and transmission spectrum of the metasurface. (a) Optical photograph and scanning electron microscope (SEM) images of sample 1. (b) Simulated two-dimensional electric field and phase distributions of the transmitted LCP and RCP waves. (c) Terahertz polarization measurement time-domain spectroscopy system. (d) Simulation results of the TCD spectrum for metasurfaces with different numbers of units. (e)–(j) Experiment results of the linear and circular polarization transmission coefficients and TCD spectra.
    Spin-selective wavefront control of transmitted terahertz wave using the proposed metasurface. (a) Optical photograph and SEM images of sample 2. (b) Experimental setup of sample 2. (c)–(j) Simulations and measured results of the two-dimensional electric field and phase distributions.
    Fig. 5. Spin-selective wavefront control of transmitted terahertz wave using the proposed metasurface. (a) Optical photograph and SEM images of sample 2. (b) Experimental setup of sample 2. (c)–(j) Simulations and measured results of the two-dimensional electric field and phase distributions.
    Jie Li, Chenglong Zheng, Guocui Wang, Jitao Li, Hongliang Zhao, Yue Yang, Zhang Zhang, Maosheng Yang, Liang Wu, Jining Li, Yating Zhang, Yan Zhang, Jianquan Yao. Circular dichroism-like response of terahertz wave caused by phase manipulation via all-silicon metasurface[J]. Photonics Research, 2021, 9(4): 567
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