Showing posts with label P. De Natale. Show all posts
Showing posts with label P. De Natale. Show all posts

Wednesday, July 26, 2017

Abstract-Terahertz Frequency Metrology for Spectroscopic Applications: a Review




We provide an overview on terahertz (THz) frequency metrology, starting from the nowadays available continuous wave THz sources, discussing their main features such as tunability, spectral purity, and frequency referencing to the primary frequency standards. A comparison on the achieved results in high-precision molecular spectroscopy is given and discussed, and finally, a special emphasis poses on the future developments of this upcoming field.

Saturday, February 7, 2015

Abstract-High-Q resonant cavities for terahertz quantum cascade lasers



High-Q resonant cavities for terahertz quantum cascade lasers

A. Campa, L. Consolino, M. Ravaro, D. Mazzotti, M. S. Vitiello, S. Bartalini, and P. De Natale  »View Author Affiliations
Optics Express, Vol. 23, Issue 3, pp. 3751-3761 (2015)
http://dx.doi.org/10.1364/OE.23.003751

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We report on the realization and characterization of two different designs for resonant THz cavities, based on wire-grid polarizers as input/output couplers, and injected by a continuous-wave quantum cascade laser (QCL) emitting at 2.55 THz. A comparison between the measured resonators parameters and the expected theoretical values is reported. With achieved quality factor Q ≈ 2.5 × 105, these cavities show resonant peaks as narrow as few MHz, comparable with the typical Doppler linewidth of THz molecular transitions and slightly broader than the free-running QCL emission spectrum. The effects of the optical feedback from one cavity to the QCL are examined by using the other cavity as a frequency reference.
© 2015 Optical Society of America

Wednesday, April 16, 2014

Synopsis: High-Precision Terahertz Spectroscopy



Frequency-Comb-Assisted Terahertz Quantum Cascade Laser Spectroscopy

S. Bartalini, L. Consolino, P. Cancio, P. De Natale, P. Bartolini, A. Taschin, M. De Pas, H. Beere, D. Ritchie, M. S. Vitiello, and R. Torre
Published April 9, 2014

Trace-gas sensing with high sensitivity and precision in the terahertz regime can be important in environmental monitoring, security, and astrophysics, as well as in tests of fundamental physics. Now, as reported in Physical Review X, a research team has performed the first terahertz spectroscopic measurements using a so-called frequency comb—a technique that allows frequency measurements with extremely high accuracy. As a proof-of-principle, the team measured a rotational transition in a gas molecule (methanol) to a precision of 4 parts in one billion, 10 times better than the previous record. The result is also twice as precise as the theoretically predicted frequency, suggesting the technique could help refine theoretical models.
Saverio Bartalini of the Italian National Institute of Optics (INO-CNR) and the European Laboratory for Non-linear Spectroscopy (LENS) and his colleagues have taken a terahertz system they previously developed and used it for spectroscopy. The researchers focused near-infrared laser pulses into a nonlinear crystal to produce a terahertz comb—a single beam containing thousands of discrete and closely spaced frequencies of light. The comb is referenced to a cesium atomic clock. To provide enough intensity for spectroscopy, they “phase locked” a quantum cascade laser to one of the comb’s “teeth.” The result is an ultrastable source with which they can measure the absorption of a gas sample as they slowly vary the laser frequency. With some simple improvements, the authors believe they can further boost their measurement precision by a factor of 100.  David Ehrenstein


Friday, September 7, 2012

Abstract Phase-locking to a free-space terahertz comb for metrological-grade terahertz lasers




Optical frequency comb synthesizers have represented a revolutionary approach to frequency metrology, providing a grid of frequency references for any laser emitting within their spectral coverage. Extending the metrological features of optical frequency comb synthesizers to the terahertz domain would be a major breakthrough, due to the widespread range of accessible strategic applications and the availability of stable, high-power and widely tunable sources such as quantum cascade lasers. Here we demonstrate phase-locking of a 2.5 THz quantum cascade laser to a free-space comb, generated in a LiNbO3 waveguide and covering the 0.1–6 THz frequency range. We show that even a small fraction (<100 nW) of the radiation emitted from the quantum cascade laser is sufficient to generate a beat note suitable for phase-locking to the comb, paving the way to novel metrological-grade terahertz applications, including high-resolution spectroscopy, manipulation of cold molecules, astronomy and telecommunications.