DocumentCode :
80821
Title :
Radiation Performance of Polarization Selective Carbon Nanotube Sheet Patch Antennas
Author :
Keller, Steven D. ; Zaghloul, Amir I. ; Shanov, Vesselin ; Schulz, Mark J. ; Mast, David B. ; Alvarez, Noe T.
Author_Institution :
U.S. Army Res. Lab., Adelphi, MD, USA
Volume :
62
Issue :
1
fYear :
2014
fDate :
Jan. 2014
Firstpage :
48
Lastpage :
55
Abstract :
Carbon nanotube (CNT) sheet patch antennas are explored through simulation, fabrication, and measurement to evaluate the performance of the CNT material as an RF radiator. The thickness of the CNT sheet was found to have a significant impact on the radiation performance of the patch antenna due to the material skin depth, with an ~ 5.5-dB improvement to the realized gain achieved when the CNT sheet thickness was increased from 0.5 μm to 5 μm, likely due to lower surface impedance. The 5 μm-CNT sheet patch antenna exhibited 2.1-dBi total realized gain compared with 5.6-dBi realized gain for baseline copper patch antenna yielding a 3.5-dB reduction attributable to the material substitution. A unique polarization sensitivity behavior was seen by adjusting the alignment of the CNTs within the CNT sheet patch structure. Optimal RF performance was observed when the CNTs within the sheet material were aligned with the E-plane of the patch antenna. When the CNT alignment was orthogonal to that of the E-plane of the patch antenna, the realized gain was reduced by over 8 dB. The input reactance changes from inductive to capacitive due to the geometry and alignment of the CNTs within the patch.
Keywords :
antenna radiation patterns; carbon nanotubes; electromagnetic wave polarisation; microstrip antennas; CNT alignment; CNT sheet patch structure; CNT sheet thickness; E-plane; RF radiator; baseline copper patch antenna; carbon nanotube sheet patch antenna; material skin depth; optimal RF performance; polarization selective carbon nanotube; polarization sensitivity behavior; radiation performance; surface impedance; Antenna measurements; Conductivity; Copper; Patch antennas; Prototypes; Sheet materials; Anisotropic media; antenna measurements; antennas; carbon; nanotechnology; polarization;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2013.2287272
Filename :
6655902
Link To Document :
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