DocumentCode
1478169
Title
Wavenumber-Domain Theory of Terahertz Single-Walled Carbon Nanotube Antenna
Author
Zhao, Mo ; Yu, Minrui ; Blick, Robert H.
Author_Institution
Dept. of Electr. & Comput. Eng., Univ. of Wisconsin, Madison, WI, USA
Volume
18
Issue
1
fYear
2012
Firstpage
166
Lastpage
175
Abstract
A theoretical study is presented on the characteristics of terahertz antennas formed by metallic single-walled carbon nanotube (SWCNT) dipoles. The Boltzmann transport equation and Maxwell´s equations are combined with boundary conditions of the electron distribution function, in order to formulate a wavenumber-domain integral equation for the current, which considers the spatial dispersion and provides higher level of accuracy and generality than existing approaches. Through proper approximations of that equation, the same spatial integral equations from several other studies can be drawn. The radiation properties of the SWCNT antenna are derived from the wavenumber-domain current. Numerical results are given for short dipole antennas and those with length close to the half wavelength in free space. They are compared to the results calculated by other methods. We also investigate the frequency dependence of conductance under different values of relaxation frequency and find the increase of relaxation frequency leads to strong attenuation of surface-wave resonances.
Keywords
Boltzmann equation; Maxwell equations; antenna radiation patterns; carbon nanotubes; dipole antennas; submillimetre wave antennas; Boltzmann transport equation; Maxwell equations; SWCNT antenna; SWCNT dipoles; boundary conditions; conductance frequency dependence; dipole antennas; electron distribution function; metallic single-walled carbon nanotube dipoles; radiation properties; relaxation frequency; spatial dispersion; spatial integral equations; surface-wave resonances; terahertz single-walled carbon nanotube antenna; wavenumber-domain integral equation; wavenumber-domain theory; Antenna theory; Boundary conditions; Conductivity; Dipole antennas; Equations; Mathematical model; Quantum capacitance; Antenna theory; carbon nanotube; nanotechnology; terahertz;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2011.2111361
Filename
5737759
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