DocumentCode
55459
Title
Sinusoidally Modulated Graphene Leaky-Wave Antenna for Electronic Beamscanning at THz
Author
Esquius-Morote, M. ; Gomez-Diaz, Juan Sebastian ; Perruisseau-Carrier, Julien
Author_Institution
Lab. d´Electromagn. et d´Acoust. (LEMA), Ecole Polytech. Fed. de Lausanne (EPFL), Lausanne, Switzerland
Volume
4
Issue
1
fYear
2014
fDate
Jan. 2014
Firstpage
116
Lastpage
122
Abstract
This paper proposes the concept, analysis and design of a sinusoidally modulated graphene leaky-wave antenna with beam scanning capabilities at a fixed frequency. The antenna operates at terahertz frequencies and is composed of a graphene sheet transferred onto a back-metallized substrate and a set of polysilicon DC gating pads located beneath it. In order to create a leaky-mode, the graphene surface reactance is sinusoidally modulated via graphene´s field effect by applying adequate DC bias voltages to the different gating pads. The pointing angle and leakage rate can be dynamically controlled by adjusting the applied voltages, providing versatile beamscanning capabilities. The proposed concept and achieved performance, computed using realistic material parameters, are extremely promising for beamscanning at THz frequencies, and could pave the way to graphene-based reconfigurable transceivers and sensors.
Keywords
beam steering; electric reactance; elemental semiconductors; graphene; leaky wave antennas; metallisation; microwave antennas; radio transceivers; silicon; terahertz wave detectors; DC bias voltage; Si; back metallized substrate; dynamic control; electronic beam scanning; graphene field effect; graphene sheet; graphene surface reactance; graphene-based reconfigurable sensor; graphene-based reconfigurable transceiver; leakage rate; leaky mode; pointing angle; polysilicon DC gating pads; sinusoidally modulated graphene leaky wave antenna; versatile beamscanning capability; Antennas; Graphene; Impedance; Modulation; Substrates; Surface impedance; Surface waves; Graphene; beamscanning; leaky-wave antennas; reconfigurability; sinusoidally modulated surfaces; terahertz (THz);
fLanguage
English
Journal_Title
Terahertz Science and Technology, IEEE Transactions on
Publisher
ieee
ISSN
2156-342X
Type
jour
DOI
10.1109/TTHZ.2013.2294538
Filename
6708495
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