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High Dynamic Range, Heterogeneous, Terahertz Quantum Cascade Lasers Featuring Thermally Tunable Frequency Comb Operation over a Broad Current Range

Academic Article
Publication Date:
2019
abstract:
We report on the engineering of broadband quantum cascade lasers (QCLs) emitting at Terahertz (THz) frequencies, which exploit a heterogeneous active region scheme and have a current density dynamic range (Jdr) of 3.2, significantly larger than the state-of-the-art, over a 1.3 THz bandwidth. We demonstrate that the devised broadband lasers operate as THz optical frequency comb synthesizers, in continuous-wave, with a maximum optical output power of 4 mW (0.73 mW in the comb regime). Measurement of the intermode beatnote map reveals a clear dispersion-compensated frequency comb regime extending over a continuous 106 mA current range (current density dynamic range of 1.24), significantly broader than the state-of-the-art at similar geometries, with a corresponding emission bandwidth of ?1.05 THz and a stable and narrow (4.15 kHz) beatnote detected with a signal-to-noise ratio of 34 dB. Analysis of the electrical and thermal beatnote tuning reveals a current-tuning coefficient ranging between 5 and 2.1 MHz/mA and a temperature-tuning coefficient of -4 MHz/K. The ability to tune the THz QCL combs over their full operating dynamic range, by temperature and current, paves the way for their use as a powerful spectroscopy tool that can provide broad frequency coverage combined with high precision spectral accuracy.
Iris type:
01.01 Articolo in rivista
Keywords:
broadband lasers; frequency combs; infrared photonics; quantum cascade laser; quantum optics; terahertz
List of contributors:
Garrasi, Katia; Salemi, Luca; DE NATALE, Paolo; Bartalini, Saverio; Vitiello, MIRIAM SERENA; Consolino, Luigi; Mezzapesa, FRANCESCO PAOLO
Authors of the University:
BARTALINI SAVERIO
CONSOLINO LUIGI
DE NATALE PAOLO
MEZZAPESA FRANCESCO PAOLO
SALEMI LUCA
VITIELLO MIRIAM SERENA
Handle:
https://iris.cnr.it/handle/20.500.14243/387676
Published in:
ACS PHOTONICS
Journal
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URL

https://eprints.whiterose.ac.uk/141359/8/Garrasi%20et%20al%20ACS%20Photonics%206(1)%20Jan%202019%20.pdf
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