Frequency tunable graphene metamaterial reflectarray for terahertz applications

被引:13
作者
Zainud-Deen, Saber H. [1 ]
Mabrouk, Ahmed M. [2 ]
Malhat, Hend A. [1 ]
机构
[1] Menoufia Univ, Fac Elect Engn, Menoufia, Egypt
[2] Badr Univ Cairo, Fac Engn & Technol, Cairo, Egypt
来源
JOURNAL OF ENGINEERING-JOE | 2018年 / 2018卷 / 09期
关键词
D O I
10.1049/joe.2018.5016
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A graphene-based metamaterial (GMM) reflectarray antenna with frequency tunable radiation characteristics has been investigated in this study. The unit-cell element consists of graphene split-ring-resonator (SRR) with two gaps printed on a grounded SiO2 substrate. The electrical properties of the metamaterial unit-cell have been determined at different graphene chemical potentials and different SRR gaps using the waveguide simulator. The metamaterial unit-cell element introduces negative epsilon(r) and mu(r) over a wide frequency band starting from 390 to 550 GHz. A reflectarray unit-cell element based on the GMM is designed at different frequencies. The phase compensation of the reflected waves is achieved by changing the SRR gap width. Reflection coefficient phase variations for 0 degrees-301 degrees with a variable slope are obtained for different graphene conductivities. Three different 13 x 13 GMM reflectarrays are designed and analysed at different graphene chemical potentials. A maximum gain of 22.6, 19, and 21.5 dB with side lobe level (SLL) is 11.31/9.15, 10.98/5.31, and 7.31/8.45 dB in an E/H-plane for the reflectarray arrangements (I), (II) and (III), respectively. An averaging phase curve is calculated to construct a single structure GMM reflectarray with frequency tunable radiation characteristics. A maximum gain of 21.8 +/- 1 dB with improved SLL of 13 dB was achieved.
引用
收藏
页码:753 / 761
页数:9
相关论文
共 30 条
[1]   Graphene metamaterials based tunable terahertz absorber: effective surface conductivity approach [J].
Andryieuski, Andrei ;
Lavrinenko, Andrei V. .
OPTICS EXPRESS, 2013, 21 (07) :9144-9155
[2]   Capacitor-loaded split ring resonators as tunable metamaterial components [J].
Aydin, K. ;
Ozbay, E. .
JOURNAL OF APPLIED PHYSICS, 2007, 101 (02)
[3]  
Bao W., 2012, ELECT MECH PROPERTIE
[4]   A terahertz metamaterial with unnaturally high refractive index [J].
Choi, Muhan ;
Lee, Seung Hoon ;
Kim, Yushin ;
Kang, Seung Beom ;
Shin, Jonghwa ;
Kwak, Min Hwan ;
Kang, Kwang-Young ;
Lee, Yong-Hee ;
Park, Namkyoo ;
Min, Bumki .
NATURE, 2011, 470 (7334) :369-373
[5]   Discrete electromagnetism with the finite integration technique - Abstract [J].
Clemens, M ;
Weiland, T .
JOURNAL OF ELECTROMAGNETIC WAVES AND APPLICATIONS, 2001, 15 (01) :79-80
[6]   Tunable metamaterial transmission lines based on varactor-loaded split-ring resonators [J].
Gil, Ignacio ;
Bonache, Jordi ;
Garcia-Garcia, Joan ;
Martin, Ferran .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2006, 54 (06) :2665-2674
[7]   Characterization of tunable metamaterial elements using MEMS switches [J].
Hand, Thomas ;
Cummer, Steven .
IEEE ANTENNAS AND WIRELESS PROPAGATION LETTERS, 2007, 6 :401-404
[8]   Dyadic Green's functions for an anisotropic, non-local model of biased graphene [J].
Hanson, George W. .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2008, 56 (03) :747-757
[9]   A Ka-band microstrip reflectarray with elements having variable rotation angles [J].
Huang, J ;
Pogorzelski, RJ .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 1998, 46 (05) :650-656
[10]  
Huang J, 2008, REFLECTARRAY ANTENNAS, P1