Frequency-multiplexed pure-phase microwave meta-holograms using bi-spectral 2-bit coding metasurfaces
In this paper, a dual-band reflective meta-hologram is designed providing two distinct information channels whose field intensity distributions can be independently manipulated at the same time. The proposed pure-phase meta-hologram is composed of several frequency-dispersive coding meta-atoms posse...
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doaj-317605f6bb9448968945076c7cbd68f72021-05-02T16:53:26ZengDe GruyterNanophotonics2192-86142020-02-019370371410.1515/nanoph-2019-0461nanoph-2019-0461Frequency-multiplexed pure-phase microwave meta-holograms using bi-spectral 2-bit coding metasurfacesIqbal Shahid0Rajabalipanah Hamid1Zhang Lei2Qiang Xiao3Abdolali Ali4Cui Tie Jun5School of Information Science and Engineering, State Key Laboratory of Millimetre Waves, Southeast University, Nanjing 210096, ChinaApplied Electromagnetic Laboratory, School of Electrical Engineering, Iran University of Science and Technology, Tehran, IranSchool of Information Science and Engineering, State Key Laboratory of Millimetre Waves, Southeast University, Nanjing 210096, ChinaSchool of Information Science and Engineering, State Key Laboratory of Millimetre Waves, Southeast University, Nanjing 210096, ChinaApplied Electromagnetic Laboratory, School of Electrical Engineering, Iran University of Science and Technology, Tehran, IranSchool of Information Science and Engineering, State Key Laboratory of Millimetre Waves, Southeast University, Nanjing 210096, ChinaIn this paper, a dual-band reflective meta-hologram is designed providing two distinct information channels whose field intensity distributions can be independently manipulated at the same time. The proposed pure-phase meta-hologram is composed of several frequency-dispersive coding meta-atoms possessing each of 2-bit digital statuses of “00”, “01”, “10”, and “11” at either the lower (X-band) or the higher (Ku-band) frequency band. Relying on the weighted Gerchberg-Saxton phase retrieval algorithm, different illustrative examples have been provided to theoretically inspect the dual-band performance of our coding meta-hologram. Numerical simulations validate the proposed frequency multiplexing meta-holography with the ability to project two different high-quality images with low cross-talk on two X-band and Ku-band near-field channels located at distinct pre-determined distances from the metasurface plane. As proof of concept, two meta-hologram samples are fabricated, and the experimental results corroborate well the numerical simulations and theoretical predictions. The designed meta-hologram features all fascinating advantages of the coding metasurfaces while its performance overcomes that of previous studies due to providing two information channels rather than the conventional single-channel holography. The frequency multiplexing acquired by the proposed bi-spectral coding meta-hologram may provide great opportunities in a variety of applications, such as data storage and information processing.http://www.degruyter.com/view/j/nanoph.2020.9.issue-3/nanoph-2019-0461/nanoph-2019-0461.xml?format=INTcoding metasurfacemicrowave holographyfrequency multiplexing |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Iqbal Shahid Rajabalipanah Hamid Zhang Lei Qiang Xiao Abdolali Ali Cui Tie Jun |
spellingShingle |
Iqbal Shahid Rajabalipanah Hamid Zhang Lei Qiang Xiao Abdolali Ali Cui Tie Jun Frequency-multiplexed pure-phase microwave meta-holograms using bi-spectral 2-bit coding metasurfaces Nanophotonics coding metasurface microwave holography frequency multiplexing |
author_facet |
Iqbal Shahid Rajabalipanah Hamid Zhang Lei Qiang Xiao Abdolali Ali Cui Tie Jun |
author_sort |
Iqbal Shahid |
title |
Frequency-multiplexed pure-phase microwave meta-holograms using bi-spectral 2-bit coding metasurfaces |
title_short |
Frequency-multiplexed pure-phase microwave meta-holograms using bi-spectral 2-bit coding metasurfaces |
title_full |
Frequency-multiplexed pure-phase microwave meta-holograms using bi-spectral 2-bit coding metasurfaces |
title_fullStr |
Frequency-multiplexed pure-phase microwave meta-holograms using bi-spectral 2-bit coding metasurfaces |
title_full_unstemmed |
Frequency-multiplexed pure-phase microwave meta-holograms using bi-spectral 2-bit coding metasurfaces |
title_sort |
frequency-multiplexed pure-phase microwave meta-holograms using bi-spectral 2-bit coding metasurfaces |
publisher |
De Gruyter |
series |
Nanophotonics |
issn |
2192-8614 |
publishDate |
2020-02-01 |
description |
In this paper, a dual-band reflective meta-hologram is designed providing two distinct information channels whose field intensity distributions can be independently manipulated at the same time. The proposed pure-phase meta-hologram is composed of several frequency-dispersive coding meta-atoms possessing each of 2-bit digital statuses of “00”, “01”, “10”, and “11” at either the lower (X-band) or the higher (Ku-band) frequency band. Relying on the weighted Gerchberg-Saxton phase retrieval algorithm, different illustrative examples have been provided to theoretically inspect the dual-band performance of our coding meta-hologram. Numerical simulations validate the proposed frequency multiplexing meta-holography with the ability to project two different high-quality images with low cross-talk on two X-band and Ku-band near-field channels located at distinct pre-determined distances from the metasurface plane. As proof of concept, two meta-hologram samples are fabricated, and the experimental results corroborate well the numerical simulations and theoretical predictions. The designed meta-hologram features all fascinating advantages of the coding metasurfaces while its performance overcomes that of previous studies due to providing two information channels rather than the conventional single-channel holography. The frequency multiplexing acquired by the proposed bi-spectral coding meta-hologram may provide great opportunities in a variety of applications, such as data storage and information processing. |
topic |
coding metasurface microwave holography frequency multiplexing |
url |
http://www.degruyter.com/view/j/nanoph.2020.9.issue-3/nanoph-2019-0461/nanoph-2019-0461.xml?format=INT |
work_keys_str_mv |
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