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  4. Modulated scattering technique in the terahertz domain enabled by current actuated vanadium dioxide switches
 
research article

Modulated scattering technique in the terahertz domain enabled by current actuated vanadium dioxide switches

Vitale, W. A.
•
Tamagnone, M.
•
Emond, N.
Show more
2017
Scientific Reports

The modulated scattering technique is based on the use of reconfigurable electromagnetic scatterers, structures able to scatter and modulate an impinging electromagnetic field in function of a control signal. The modulated scattering technique is used in a wide range of frequencies up to millimeter waves for various applications, such as field mapping of circuits or antennas, radio-frequency identification devices and imaging applications. However, its implementation in the terahertz domain remains challenging. Here, we describe the design and experimental demonstration of the modulated scattering technique at terahertz frequencies. We characterize a modulated scatterer consisting in a bowtie antenna loaded with a vanadium dioxide switch, actuated using a continuous current. The modulated scatterer behavior is demonstrated using a time domain terahertz spectroscopy setup and shows significant signal strength well above 0.5 THz, which makes this device a promising candidate for the development of fast and energy-efficient THz communication devices and imaging systems. Moreover, our experiments allowed us to verify the operation of a single micro-meter sized VO2 switch at terahertz frequencies, thanks to the coupling provided by the antenna.

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Type
research article
DOI
10.1038/srep41546
Web of Science ID

WOS:000393139200001

Author(s)
Vitale, W. A.
Tamagnone, M.
Emond, N.
Le Drogoff, B.
Capdevila, S.
Skrivervik, A.  
Chaker, M.
Mosig, J. R.  
Ionescu, A. M.
Date Issued

2017

Publisher

Nature Research

Published in
Scientific Reports
Volume

7

Article Number

41546

Note

Gold OA

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LEMA  
SCI-STI-AS  
Available on Infoscience
March 27, 2017
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/135931
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