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research article

Spatially Dispersive Graphene Single and Parallel Plate Waveguides: Analysis and Circuit Model

Correas-Serrano, Diego
•
Gomez-Diaz, Juan Sebastian
•
Perruisseau-Carrier, Julien  
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2013
IEEE Transactions On Microwave Theory And Techniques

The propagation of surface waves along spatially dispersive graphene-based 2-D waveguides is investigated in detail. Graphene is characterized using a full-k(rho) conductivity model under the relaxation-time approximation, which allows to obtain analytical and closed-formed expressions for the wavenumber of plasmons supported by sheets and parallel plate waveguides, respectively. Per unit length equivalent circuits are introduced to accurately characterize the propagation in different waveguides, and analytical relations between the effective TM-mode circuit lumped elements and graphene conductivity are derived. The proposed circuits allow identifying the different mechanisms involved in spatially dispersive plasmon propagation, explaining their connection with the intrinsic properties of graphene. Results demonstrate that spatial dispersion, which significantly decreases the confinement and the losses of slow surface plasmons, must be accurately assessed in the design of graphene-based plasmonic components at millimeter-waves and low terahertz frequencies.

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Type
research article
DOI
10.1109/Tmtt.2013.2286971
Web of Science ID

WOS:000327952100037

Author(s)
Correas-Serrano, Diego
•
Gomez-Diaz, Juan Sebastian
•
Perruisseau-Carrier, Julien  
•
Alvarez-Melcon, Alejandro
Date Issued

2013

Publisher

Institute of Electrical and Electronics Engineers

Published in
IEEE Transactions On Microwave Theory And Techniques
Volume

61

Issue

12

Start page

4333

End page

4344

Subjects

Graphene

•

plasmons

•

spatial dispersion

•

terahertz

•

transmission line model

Peer reviewed

REVIEWED

Written at

EPFL

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Available on Infoscience
January 9, 2014
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/99211
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