Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7846008 | Journal of Quantitative Spectroscopy and Radiative Transfer | 2018 | 7 Pages |
Abstract
The ν1 fundamental band of N2O is examined by a novel spectrometer that relies on the frequency locking of an external-cavity quantum cascade laser around 7.8 µm to a near-infrared Tm:based frequency comb at 1.9 µm. Due to the large tunability, nearly 70 lines in the 1240-1310 cmâ1 range of the ν1 band of N2O, from P(40) to R(31), are for the first time measured with an absolute frequency calibration and an uncertainty from 62 to 180â¯kHz, depending on the line. Accurate values of the spectroscopic constants of the upper state are derived from a fit of the line centers (rms â 4.8â¯Ãâ¯10â6 cmâ1 or 144â¯kHz). The ν1 transitions presently measured in a Doppler regime validate high accuracy predictions based on sub-Doppler measurements of the ν3 and ν3-ν1 transitions.
Related Topics
Physical Sciences and Engineering
Chemistry
Spectroscopy
Authors
Bidoor AlSaif, Marco Lamperti, Davide Gatti, Paolo Laporta, Martin Fermann, Aamir Farooq, Oleg Lyulin, Alain Campargue, Marco Marangoni,