Cavity-based photoconductive sources for real-time terahertz imaging
Author(s) -
J. Hawecker,
Valentino Pistore,
Amalya Minasyan,
Kenneth Maussang,
José M. Palomo,
I. Sagnes,
JeanMichel Manceau,
R. Colombelli,
J. Tig,
J. Mangeney,
Sukhdeep Dhillon
Publication year - 2020
Publication title -
photonics research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.066
H-Index - 56
ISSN - 2327-9125
DOI - 10.1364/prj.388219
Subject(s) - terahertz radiation , photoconductivity , raster scan , optics , broadband , optoelectronics , materials science , raster graphics , terahertz spectroscopy and technology , multispectral image , physics , computer science , artificial intelligence , computer vision
Optically driven photoconductive switches are one of the predominant sources currently used in terahertz imaging systems. However, owing to their low average powers, only raster-based images can be taken, resulting in slow acquisition. In this work, we show that by placing a photoconductive switch within a cavity, we are able to generate absolute average THz powers of 181 μW with the frequency of the THz emission centered at 1.5 THz—specifications ideally adapted to applications such as non-destructive imaging. The cavity is based on a metal–insulator–metal structure that permits an enhancement of the average power by almost 1 order of magnitude compared to a standard structure, while conserving a broadband spectral response. We demonstrate proof-of-principle real-time imaging using this source, with the broadband spectrum permitting to eliminate strong diffraction artifacts.
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