Photonics Research, Volume. 11, Issue 2, 203(2023)

Virtual metasurfaces: reshaping electromagnetic waves in distance

Ruichao Zhu1, Jiafu Wang1,4、*, Yajuan Han1, Yuxiang Jia1, Tonghao Liu1, Tianshuo Qiu1, Sai Sui1, Yongfeng Li1, Mingbao Yan1, Shaobo Qu1, and Cheng-Wei Qiu2,3,5、*
Author Affiliations
  • 1Shaanxi Key Laboratory of Artificially-Structured Functional Materials and Devices, Air Force Engineering University, Xi’an 710051, China
  • 2Department of Electrical and Computer Engineering, National University of Singapore, Singapore 117583, Singapore
  • 3NUS Suzhou Research Institute (NUSRI), Suzhou 215000, China
  • 4e-mail: wangjiafu1981@126.com
  • 5e-mail: chengwei.qiu@nus.edu.sg
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    Figures & Tables(9)
    Schematic diagram of the virtual metasurface compared with the conventional one.
    Structure and network design: (a) geometrical parameter of unit in front view and side view; (b) phase response when the length changes from 0.9 to 3.7 mm, and the step length is 0.4 mm; (c) phase response after rotating the unit 90 deg; (d) amplitude of cross-polarized wave when the length changes from 0.9 to 3.7 mm, and the step length is 0.4 mm; (e) amplitude response after rotating the unit 90 deg.
    Design of focusing metasurfaces and generation of virtual meta-atoms: (a), (b) two phase profiles of metasurface with a 180 deg phase difference; (c), (d) generated focusing metasurfaces filled according to the phase profiles in (a) and (b); (e), (h) distributions of electric fields Ex on the XOZ plane; (f), (i) electric field intensity distribution on the XOY plane when Z=30 mm; (g), (j) phase distribution on the XOY plane when Z=30 mm.
    Virtual metasurface design and verification: (a) focusing metasurfaces are spliced together according to the chessboard arrangement; (b) the intensity distribution of Ex on the focusing plane in chessboard arrangement; (c) the phase distribution of Ex on the focusing plane in chessboard arrangement; (d) the 3D far-field scattering beam of metasurface in chessboard arrangement.
    Verification that the far-field scattering modulation is realized by the VM rather than the entity metasurface: (a) virtual metasurface is aligned with the obstacle (a metal plate with spaced apertures); (b) the phase profile of entity metasurface; (c) the intensity distribution of Ex on the focusing plane in chessboard arrangement with the obstacle; (d) the phase distribution of Ex on the focusing plane in chessboard arrangement with the obstacle; (e) the 3D far-field scattering beam of metasurface in chessboard arrangement with the obstacle; (f) the 3D far-field scattering beam of entity metasurface; (g) the 3D far-field scattering beam of entity metasurface with obstacle.
    Sample fabrication and performance verification: (a) the photographs of TFMTs; (b) the photographs of spliced TFMTs according to checkerboard configuration and the samples with obstacle; (c) near-field measurement environment; (d) far-field measurement environment; (e), (f) the electric field distributions in XOZ cross sections of the 0 and 1 focusing metasurfaces; (g) the electric field distributions in XOY cross sections of the virtual metasurface with checkerboard configuration; (h) the measured far-field radiation patterns under the chessboard arrangement when φ=45° and φ=−45° on orthogonal diagonal lines; (i) the measured far-field radiation patterns under the chessboard arrangement with obstacle when φ=45° and φ=−45° on orthogonal diagonal lines.
    Fitting performance of neural network.
    Theoretical formation path of focus and more aperture sizes: (a) theoretical formation path of focus; (b) 3D far-field result with obstacle when HR=20 mm and Rhole=19 mm; (c) 3D far-field result with obstacle when HR=25 mm and Rhole=16 mm; (d) 3D far-field result with obstacle when HR=30 mm and Rhole=13 mm.
    Cross profile comparison between the existence of obstacles and the absence of obstacles: (a) comparison of entity metasurface; (b) comparison of VM.
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    Ruichao Zhu, Jiafu Wang, Yajuan Han, Yuxiang Jia, Tonghao Liu, Tianshuo Qiu, Sai Sui, Yongfeng Li, Mingbao Yan, Shaobo Qu, Cheng-Wei Qiu, "Virtual metasurfaces: reshaping electromagnetic waves in distance," Photonics Res. 11, 203 (2023)

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    Paper Information

    Category: Physical Optics

    Received: Sep. 13, 2022

    Accepted: Dec. 6, 2022

    Published Online: Feb. 8, 2023

    The Author Email: Jiafu Wang (wangjiafu1981@126.com), Cheng-Wei Qiu (chengwei.qiu@nus.edu.sg)

    DOI:10.1364/PRJ.475471

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