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Fabry-Pérot Resonator Antenna in Equivalent-Medium Metamaterials

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Fabry-Pérot Resonator Antenna in Equivalent-Medium Metamaterials. / Yuan, Wei; Chen, Jianfeng; Tang, Wen Xuan et al.
In: IEEE Transactions on Antennas and Propagation, Vol. 69, No. 11, 30.11.2021, p. 7906-7911.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Yuan, W, Chen, J, Tang, WX, Wang, L, Cui, TJ & Cheng, Q 2021, 'Fabry-Pérot Resonator Antenna in Equivalent-Medium Metamaterials', IEEE Transactions on Antennas and Propagation, vol. 69, no. 11, pp. 7906-7911. https://doi.org/10.1109/TAP.2021.3076666

APA

Yuan, W., Chen, J., Tang, W. X., Wang, L., Cui, T. J., & Cheng, Q. (2021). Fabry-Pérot Resonator Antenna in Equivalent-Medium Metamaterials. IEEE Transactions on Antennas and Propagation, 69(11), 7906-7911. https://doi.org/10.1109/TAP.2021.3076666

Vancouver

Yuan W, Chen J, Tang WX, Wang L, Cui TJ, Cheng Q. Fabry-Pérot Resonator Antenna in Equivalent-Medium Metamaterials. IEEE Transactions on Antennas and Propagation. 2021 Nov 30;69(11):7906-7911. Epub 2021 May 5. doi: 10.1109/TAP.2021.3076666

Author

Yuan, Wei ; Chen, Jianfeng ; Tang, Wen Xuan et al. / Fabry-Pérot Resonator Antenna in Equivalent-Medium Metamaterials. In: IEEE Transactions on Antennas and Propagation. 2021 ; Vol. 69, No. 11. pp. 7906-7911.

Bibtex

@article{b0bfa05e686347518da3adfc2d6657b7,
title = "Fabry-P{\'e}rot Resonator Antenna in Equivalent-Medium Metamaterials",
abstract = "In this communication, a wideband Fabry-P{\'e}rot resonator antenna (FPRA) is proposed. An optimized partially reflective surface (PRS) with a transverse permittivity gradient (TPG) composed of four nonrotationally symmetric sections is employed in the design of the antenna. The use of nonrotationally symmetric PRS results in more than 31% improvement of the 3 dB gain bandwidth compared with the traditional rotationally symmetric PRS. Furthermore, two types of nonresonant metamaterials (metallic-ring and etching-hole unit cells) are used to implement the equivalent permittivity of PRS. In this way, the equivalent permittivity value covers a broad range (3.5-9.5) for the same dielectric. As a result, the restrictions imposed by the use of only commercially available dielectrics and the errors that occur during the fabrication and assembly progress of different materials can be avoided. The primary radiator of FPRA is a double-ridge waveguide horn, which ensures wideband antenna operation. An FPRA prototype is fabricated and measured, which exhibits a broad bandwidth (5.2-11.5 GHz) with the return loss |S11| of less than -10 dB. The measured 3 dB gain bandwidth is 73.8% (in the frequency range of 5.3-11.5 GHz) with a peak gain of 17.1 dBi at 7.8 GHz.",
author = "Wei Yuan and Jianfeng Chen and Tang, {Wen Xuan} and Lei Wang and Cui, {Tie Jun} and Qiang Cheng",
year = "2021",
month = nov,
day = "30",
doi = "10.1109/TAP.2021.3076666",
language = "English",
volume = "69",
pages = "7906--7911",
journal = "IEEE Transactions on Antennas and Propagation",
issn = "0018-926X",
publisher = "Institute of Electrical and Electronics Engineers Inc.",
number = "11",

}

RIS

TY - JOUR

T1 - Fabry-Pérot Resonator Antenna in Equivalent-Medium Metamaterials

AU - Yuan, Wei

AU - Chen, Jianfeng

AU - Tang, Wen Xuan

AU - Wang, Lei

AU - Cui, Tie Jun

AU - Cheng, Qiang

PY - 2021/11/30

Y1 - 2021/11/30

N2 - In this communication, a wideband Fabry-Pérot resonator antenna (FPRA) is proposed. An optimized partially reflective surface (PRS) with a transverse permittivity gradient (TPG) composed of four nonrotationally symmetric sections is employed in the design of the antenna. The use of nonrotationally symmetric PRS results in more than 31% improvement of the 3 dB gain bandwidth compared with the traditional rotationally symmetric PRS. Furthermore, two types of nonresonant metamaterials (metallic-ring and etching-hole unit cells) are used to implement the equivalent permittivity of PRS. In this way, the equivalent permittivity value covers a broad range (3.5-9.5) for the same dielectric. As a result, the restrictions imposed by the use of only commercially available dielectrics and the errors that occur during the fabrication and assembly progress of different materials can be avoided. The primary radiator of FPRA is a double-ridge waveguide horn, which ensures wideband antenna operation. An FPRA prototype is fabricated and measured, which exhibits a broad bandwidth (5.2-11.5 GHz) with the return loss |S11| of less than -10 dB. The measured 3 dB gain bandwidth is 73.8% (in the frequency range of 5.3-11.5 GHz) with a peak gain of 17.1 dBi at 7.8 GHz.

AB - In this communication, a wideband Fabry-Pérot resonator antenna (FPRA) is proposed. An optimized partially reflective surface (PRS) with a transverse permittivity gradient (TPG) composed of four nonrotationally symmetric sections is employed in the design of the antenna. The use of nonrotationally symmetric PRS results in more than 31% improvement of the 3 dB gain bandwidth compared with the traditional rotationally symmetric PRS. Furthermore, two types of nonresonant metamaterials (metallic-ring and etching-hole unit cells) are used to implement the equivalent permittivity of PRS. In this way, the equivalent permittivity value covers a broad range (3.5-9.5) for the same dielectric. As a result, the restrictions imposed by the use of only commercially available dielectrics and the errors that occur during the fabrication and assembly progress of different materials can be avoided. The primary radiator of FPRA is a double-ridge waveguide horn, which ensures wideband antenna operation. An FPRA prototype is fabricated and measured, which exhibits a broad bandwidth (5.2-11.5 GHz) with the return loss |S11| of less than -10 dB. The measured 3 dB gain bandwidth is 73.8% (in the frequency range of 5.3-11.5 GHz) with a peak gain of 17.1 dBi at 7.8 GHz.

UR - https://researchportal.hw.ac.uk/en/publications/7c7ab664-b7b9-4880-babb-34d05439915c

U2 - 10.1109/TAP.2021.3076666

DO - 10.1109/TAP.2021.3076666

M3 - Journal article

VL - 69

SP - 7906

EP - 7911

JO - IEEE Transactions on Antennas and Propagation

JF - IEEE Transactions on Antennas and Propagation

SN - 0018-926X

IS - 11

ER -