\(\mathrm{N}_{2}\)-broadening coefficients have been measured for 28 lines of \(\mathrm{HCN}\) at \(203 \mathrm{~K}\) in the \(P, Q\). and \(R\) branches of the \(\nu_{2}\) band, using a tunable diode-laser spectrometer. Semiclassical calculations of these collisional broadenings have been performed
N2-Broadening for Methyl Chloride at Low Temperature by Diode-Laser Spectroscopy
β Scribed by Jean-Pierre Bouanich; Ghislain Blanquet; Jean-Claude Populaire; Jacques Walrand
- Publisher
- Elsevier Science
- Year
- 2001
- Tongue
- English
- Weight
- 200 KB
- Volume
- 208
- Category
- Article
- ISSN
- 0022-2852
No coin nor oath required. For personal study only.
β¦ Synopsis
Using a tunable diode-laser spectrometer, we have measured N 2 -broadening coefficients of 87 individual rovibrational lines in the P and R branches of the Ξ½ 3 band of methyl chloride (CH 3
35 Cl) at 203.2 K. These lines with J values ranging from 2 to 22 and K from 0 to 6 are located in the range 711-751 cm -1 . Most of the collisional widths are obtained by modeling the spectral region from the superposition of overlapping Voigt or Rautian profiles. We have reviewed and completed previous measurements of N 2 -broadening coefficients at room temperature in the Ξ½ 3 band, in order to compare them to the low-temperature data. A semiclassical calculation, including electrostatic, induction, and dispersion energy contributions, has provided results that are in reasonable agreement with the experimental data at room temperature, but generally larger than the data at low temperature for small or medium J values. The temperature dependence of the collisional broadenings derived from a simple power law has been determined both experimentally and theoretically.
π SIMILAR VOLUMES
Collisional self-broadening coefficients for 21 lines in the \(P\) and \(R\) branches of the \(v_{5}\) band of \(\mathrm{C}_{2} \mathrm{H}_{2}\) at low temperature ( \(173 \mathrm{~K}\) ) have been measured using a tunable diode laser spectrometer and a low-temperature variable path length absorptio
Collision effects on water vapor line profiles perturbed by nitrogen at room temperature have been studied by Fourier transform and tunable diode laser spectroscopy. Narrowing effect due to molecular confinement (Dicke effect) has been observed for P and Q branch lines of the Ξ½ 2 band of H 2 O with