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JOURNALS // Optics and Spectroscopy // Archive

Optics and Spectroscopy, 2019 Volume 126, Issue 5, Pages 663–669 (Mi os724)

This article is cited in 9 papers

The 22nd Annual Conference Saratov Fall Meeting 2018 (SFM'18): VI International Symposium ''Optics and Biophotonics'' and XXII International School for Junior Scientists and Students on Optics, Laser Physics & Biophotonics
Biophotonics

Plasmonic photoconductive antennas for terahertz pulsed spectroscopy and imaging systems

D. V. Lavrukhinab, R. R. Galieva, A. Yu. Pavlovab, A. E. Yachmenevab, M. V. Maytamaab, I. A. Glinskiyab, R. A. Khabibullinab, Yu. G. Goncharovb, K. I. Zaitsevbc, D. S. Ponomarevba

a V. G. Mokerov Institute of Ultra High Frequency Semiconductor Electronics of RAS, Moscow
b Prokhorov General Physics Institute of the Russian Academy of Sciences, Moscow
c Bauman Moscow State Technical University

Abstract: We propose a terahertz (THz) plasmonic photoconductive antenna (PCA) with a record height of its metal electrodes of $h$ = 100 nm and a high aspect ratio of $h/p$ = 0.5 ($p$ is the period of the plasmonic grating) that can be used as a source is THz pulsed spectroscopic and imaging systems. We experimentally demonstrate that the power of the THz radiation generated by the proposed plasmonic PCA is two orders of magnitude higher than that of an equivalent ordinary PCA without a plasmonic grating. Current–voltage measurements of the thus developed plasmonic PCA under femtosecond laser excitation show that the photocurrent of the PCA increases 15-fold, up to $i _p\approx$ 1.2 mA. To reduce the leakage currents of the PCA, we propose a fabrication technology that is based on the etching of windows in a thin Si$_{3}$N$_{4}$ passivation dielectric layer deposited on the photoconductor surface, which makes it possible to reduce the dark current to $i_d\approx$ 5 $\mu$A.

Received: 13.11.2018
Revised: 29.01.2019
Accepted: 31.01.2019

DOI: 10.21883/OS.2019.05.47668.17-19


 English version:
Optics and Spectroscopy, 2019, 126:5, 580–586

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