Reconfigurable Transparent All-Dielectric Water-Based Metamaterial for Microstrip Patch Antenna Gain Enhancement

被引:0
|
作者
Saber H. Zainud-Deen
Mona M. Badawy
Hend A. Malhat
机构
[1] Badr University in Cairo,Faculty of Engineering and Technology
[2] Menoufia University,Faculty of Electronic Engineering
来源
Wireless Personal Communications | 2020年 / 111卷
关键词
Water antenna; Metamaterial; Lens;
D O I
暂无
中图分类号
学科分类号
摘要
This paper present transparent, all dielectric water-based metamaterial (MM) superstrates with reconfigurable characteristics is employed for gain and bandwidth enhancement of a water-based microstrip patch antenna. The water-based microstrip patch antenna is fed by an L-shape probe. All dielectric water-based MM unit-cell element consists of dielectric cubic boxes filled with water is designed and analyzed. The reconfigurable electric properties are achieved via changing the water height in the MM unit-cell element. Different arrangements of the MM array with water height tapering are optimized and designed for microstrip patch antenna gain enhancement. The MM array is used as a single layer superstrate placed normal to the microstrip patch. A water-based MM lens consists of three layers is designed to collimate the radiation from the microstrip patch antenna. The phase compensation in the MM lens is achieved via changing the water height in the MM unit-cell elements of the lens. A reconfigurable beam in different directions from −30° to +30° is steered by changing the water level distribution over the MM lens unit-cell elements. A full-wave analysis using the finite integration technique is used for the design and analysis of the water-based MM lens arrangements.
引用
收藏
页码:443 / 461
页数:18
相关论文
共 50 条
  • [21] High gain multiband and frequency reconfigurable metamaterial superstrate microstrip patch antenna for C/X/Ku-band wireless network applications
    Sunil K.Sumathi
    PengZhi Lavadiya
    Juveriya Yin
    Shobhit K. Parmar
    Wireless Networks, 2021, 27 : 2131 - 2146
  • [22] High gain multiband and frequency reconfigurable metamaterial superstrate microstrip patch antenna for C/X/Ku-band wireless network applications
    Sumathi, K.
    Lavadiya, Sunil
    Yin, PengZhi
    Parmar, Juveriya
    Patel, Shobhit K.
    WIRELESS NETWORKS, 2021, 27 (03) : 2131 - 2146
  • [23] Dual-Fano resonances based on all-dielectric toroidal metamaterial
    Xiang, Tianyu
    Lei, Tao
    Wu, Jiong
    Wang, Jianwei
    Yang, Helin
    APPLIED PHYSICS EXPRESS, 2022, 15 (03)
  • [24] GAIN ENHANCEMENT OF APERTURE COUPLED PATCH ANTENNA USING METAMATERIAL AND CONICAL METAL FRAME
    Abdel-Rahman, Adel B.
    Ibrahim, Ahmed A.
    2012 MIDDLE EAST CONFERENCE ON ANTENNAS AND PROPAGATION (MECAP), 2013, : 50 - 54
  • [25] A Zero Index Metamaterial Lens for Gain Enhancement of Patch Antenna and H-plane Horn Antenna
    Lv, Yue-Long
    Meng, Fan-Yi
    Zhang, Fang
    Zhu, Lei
    Fu, Jia-Hui
    Zhang, Kuang
    Wu, Qun
    2013 IEEE INTERNATIONAL WIRELESS SYMPOSIUM (IWS), 2013,
  • [26] Gain Enhancement of Patch Antenna using Metamaterial in Sub-6GHz Band
    Elahi, Fakhar
    Bashir, Shahid
    2021 1ST INTERNATIONAL CONFERENCE ON MICROWAVE, ANTENNAS & CIRCUITS (ICMAC), 2021,
  • [27] The effect of a metamaterial-based wearable microstrip patch antenna on the human body
    Tetik, Erkan
    Tetik, Gamze D.
    CANADIAN JOURNAL OF PHYSICS, 2018, 96 (07) : 796 - 800
  • [28] Electromagnetically Induced Transparency Based on All-Dielectric Metamaterial with High Q Factor
    Wang Ziyu
    Shao Jian
    Hu Yaxin
    Zhu Jialu
    Zhang Xiaorui
    Bai Lei
    Dong Zhenggao
    ACTA OPTICA SINICA, 2021, 41 (11)
  • [29] Performance Enhancement of Coaxial Feed Microstrip Patch Antenna Using Left-Handed Metamaterial Cover
    Paswan, Pradeep
    Mishra, Vivekanand
    Patel, P. N.
    Dwivedi, Surabhi
    2014 IEEE STUDENTS' CONFERENCE ON ELECTRICAL, ELECTRONICS AND COMPUTER SCIENCE (SCEECS), 2014,
  • [30] Gain Enhancement of Microstrip Patch Antenna Loaded with Split Ring Resonator Based Relative Permeability Near Zero as Superstrate
    Deepak Gangwar
    Sushrut Das
    R. L. Yadava
    Wireless Personal Communications, 2017, 96 : 2389 - 2399