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Linearity and Continuity Enhanced Phase Shifter Based on Geometric-Phase Metasurface

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Linearity and Continuity Enhanced Phase Shifter Based on Geometric-Phase Metasurface. / Chen, Jianfeng; Zhang, Shengqi; Wang, Qiang et al.
In: IEEE Transactions on Microwave Theory and Techniques, Vol. 72, No. 6, 01.06.2024, p. 3614-3625.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Chen, J, Zhang, S, Wang, Q, Wang, L, Goussetis, G & Cheng, Q 2024, 'Linearity and Continuity Enhanced Phase Shifter Based on Geometric-Phase Metasurface', IEEE Transactions on Microwave Theory and Techniques, vol. 72, no. 6, pp. 3614-3625. https://doi.org/10.1109/TMTT.2023.3328480

APA

Chen, J., Zhang, S., Wang, Q., Wang, L., Goussetis, G., & Cheng, Q. (2024). Linearity and Continuity Enhanced Phase Shifter Based on Geometric-Phase Metasurface. IEEE Transactions on Microwave Theory and Techniques, 72(6), 3614-3625. https://doi.org/10.1109/TMTT.2023.3328480

Vancouver

Chen J, Zhang S, Wang Q, Wang L, Goussetis G, Cheng Q. Linearity and Continuity Enhanced Phase Shifter Based on Geometric-Phase Metasurface. IEEE Transactions on Microwave Theory and Techniques. 2024 Jun 1;72(6):3614-3625. Epub 2023 Nov 7. doi: 10.1109/TMTT.2023.3328480

Author

Chen, Jianfeng ; Zhang, Shengqi ; Wang, Qiang et al. / Linearity and Continuity Enhanced Phase Shifter Based on Geometric-Phase Metasurface. In: IEEE Transactions on Microwave Theory and Techniques. 2024 ; Vol. 72, No. 6. pp. 3614-3625.

Bibtex

@article{0c281a856a2342148febae9445b0e321,
title = "Linearity and Continuity Enhanced Phase Shifter Based on Geometric-Phase Metasurface",
abstract = "In this article, a geometric-phase (GP) metasurface-inspired phase shifter with linear and continual phase response has been introduced. The output phase can be adjusted by only rotating the GP metasurface. Physically distinct from the traditional phase-shifting techniques relying on the dynamical phase (DP), the phase variation based on the manipulation of the GP is independent of the signal transmission time, leading to desirably stable performances in the working band. To elaborate on the idea, a phased shifter model has been implemented in a circular waveguide by loading a GP metasurface and two polarization converters. Theoretical analysis, including the generation of GP and transmission-line networks, is carried out in detail. In addition, the limitation of this approach is also explored, in order to deliver a general design guideline for practical applications. To further demonstrate our scenario, a proof-of-concept prototype is fabricated and tested. The numerical and experimental results are in good agreement and both validate the effectiveness on the phase linearity and stability in the design frequency band. In conclusion, the proposed frequency-independent phase shifter is very promising for the emerging phased array systems with stable and reliable performance in a wideband.",
author = "Jianfeng Chen and Shengqi Zhang and Qiang Wang and Lei Wang and George Goussetis and Qiang Cheng",
year = "2024",
month = jun,
day = "1",
doi = "10.1109/TMTT.2023.3328480",
language = "English",
volume = "72",
pages = "3614--3625",
journal = "IEEE Transactions on Microwave Theory and Techniques",
issn = "0018-9480",
publisher = "Institute of Electrical and Electronics Engineers Inc.",
number = "6",

}

RIS

TY - JOUR

T1 - Linearity and Continuity Enhanced Phase Shifter Based on Geometric-Phase Metasurface

AU - Chen, Jianfeng

AU - Zhang, Shengqi

AU - Wang, Qiang

AU - Wang, Lei

AU - Goussetis, George

AU - Cheng, Qiang

PY - 2024/6/1

Y1 - 2024/6/1

N2 - In this article, a geometric-phase (GP) metasurface-inspired phase shifter with linear and continual phase response has been introduced. The output phase can be adjusted by only rotating the GP metasurface. Physically distinct from the traditional phase-shifting techniques relying on the dynamical phase (DP), the phase variation based on the manipulation of the GP is independent of the signal transmission time, leading to desirably stable performances in the working band. To elaborate on the idea, a phased shifter model has been implemented in a circular waveguide by loading a GP metasurface and two polarization converters. Theoretical analysis, including the generation of GP and transmission-line networks, is carried out in detail. In addition, the limitation of this approach is also explored, in order to deliver a general design guideline for practical applications. To further demonstrate our scenario, a proof-of-concept prototype is fabricated and tested. The numerical and experimental results are in good agreement and both validate the effectiveness on the phase linearity and stability in the design frequency band. In conclusion, the proposed frequency-independent phase shifter is very promising for the emerging phased array systems with stable and reliable performance in a wideband.

AB - In this article, a geometric-phase (GP) metasurface-inspired phase shifter with linear and continual phase response has been introduced. The output phase can be adjusted by only rotating the GP metasurface. Physically distinct from the traditional phase-shifting techniques relying on the dynamical phase (DP), the phase variation based on the manipulation of the GP is independent of the signal transmission time, leading to desirably stable performances in the working band. To elaborate on the idea, a phased shifter model has been implemented in a circular waveguide by loading a GP metasurface and two polarization converters. Theoretical analysis, including the generation of GP and transmission-line networks, is carried out in detail. In addition, the limitation of this approach is also explored, in order to deliver a general design guideline for practical applications. To further demonstrate our scenario, a proof-of-concept prototype is fabricated and tested. The numerical and experimental results are in good agreement and both validate the effectiveness on the phase linearity and stability in the design frequency band. In conclusion, the proposed frequency-independent phase shifter is very promising for the emerging phased array systems with stable and reliable performance in a wideband.

U2 - 10.1109/TMTT.2023.3328480

DO - 10.1109/TMTT.2023.3328480

M3 - Journal article

VL - 72

SP - 3614

EP - 3625

JO - IEEE Transactions on Microwave Theory and Techniques

JF - IEEE Transactions on Microwave Theory and Techniques

SN - 0018-9480

IS - 6

ER -