• Advanced Photonics
  • Vol. 4, Issue 2, 025001 (2022)
Xin Ge Zhang1, Ya Lun Sun1, Bingcheng Zhu2、3, Wei Xiang Jiang1、3、4、*, Zaichen Zhang2、3, and Tie Jun Cui1、*
Author Affiliations
  • 1Southeast University, School of Information Science and Engineering, State Key Laboratory of Millimeter Waves, Nanjing, China
  • 2Southeast University, School of Information Science and Engineering, National Mobile Communications Research Laboratory, Nanjing, China
  • 3Purple Mountain Laboratories, Nanjing, China
  • 4Southeast University, Frontiers Science Center for Mobile Information Communication and Security, Nanjing, China
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    DOI: 10.1117/1.AP.4.2.025001 Cite this Article Set citation alerts
    Xin Ge Zhang, Ya Lun Sun, Bingcheng Zhu, Wei Xiang Jiang, Zaichen Zhang, Tie Jun Cui. Light-controllable time-domain digital coding metasurfaces[J]. Advanced Photonics, 2022, 4(2): 025001 Copy Citation Text show less
    Schematic of the light-controllable time-domain digital coding metasurface. Such a time-domain metasurface platform is constructed by integrating directly a high-speed photoelectric detection circuit into a full-polarization programmable metasurface. On this hybrid metasurface platform, the microwave reflection spectrum can be manipulated in real time by the light signal with different time-coding sequences.
    Fig. 1. Schematic of the light-controllable time-domain digital coding metasurface. Such a time-domain metasurface platform is constructed by integrating directly a high-speed photoelectric detection circuit into a full-polarization programmable metasurface. On this hybrid metasurface platform, the microwave reflection spectrum can be manipulated in real time by the light signal with different time-coding sequences.
    Reflection performance of the digital metasurface element. (a) Simulated reflection phase and amplitude curves of the element for two different capacitances CT under x- and y-polarized incidences. (b) Simulated reflection phase and amplitude curves of the element for two different capacitances CT under LCP and RCP incidences.
    Fig. 2. Reflection performance of the digital metasurface element. (a) Simulated reflection phase and amplitude curves of the element for two different capacitances CT under x- and y-polarized incidences. (b) Simulated reflection phase and amplitude curves of the element for two different capacitances CT under LCP and RCP incidences.
    The fabricated light-controllable time-domain digital coding metasurface and its performance. (a) Photograph of the programmable metasurface sample consisting of 18×18 digital metasurface elements. (b) Photograph of the high-speed photoelectric detection circuit integrated directly into the back of the metasurface sample. (c) Measured reflection phases of the light-controllable metasurface sample at several different frequencies for two different illumination intensities Ev under x-polarized and LCP incidences.
    Fig. 3. The fabricated light-controllable time-domain digital coding metasurface and its performance. (a) Photograph of the programmable metasurface sample consisting of 18×18 digital metasurface elements. (b) Photograph of the high-speed photoelectric detection circuit integrated directly into the back of the metasurface sample. (c) Measured reflection phases of the light-controllable metasurface sample at several different frequencies for two different illumination intensities Ev under x-polarized and LCP incidences.
    Experiment setup and tested results. (a) Photograph of the experiment setup for spectrum tests. (b)–(e) Under x-polarized incidences, the measured reflected harmonics of the light-controllable time-domain metasurface at 6.5 GHz for two time-coding sequences of 0101010101… and 0010110111… with different modulation frequencies [(b), (c)] f0=100 kHz and [(d), (e)] f0=200 kHz. (f)–(i) Measured reflected harmonics for corresponding cases under LCP incidences.
    Fig. 4. Experiment setup and tested results. (a) Photograph of the experiment setup for spectrum tests. (b)–(e) Under x-polarized incidences, the measured reflected harmonics of the light-controllable time-domain metasurface at 6.5 GHz for two time-coding sequences of 0101010101… and 0010110111… with different modulation frequencies [(b), (c)] f0=100  kHz and [(d), (e)] f0=200  kHz. (f)–(i) Measured reflected harmonics for corresponding cases under LCP incidences.
    Xin Ge Zhang, Ya Lun Sun, Bingcheng Zhu, Wei Xiang Jiang, Zaichen Zhang, Tie Jun Cui. Light-controllable time-domain digital coding metasurfaces[J]. Advanced Photonics, 2022, 4(2): 025001
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