Issue 13, 2010

Accurate determination of low state rotational quantum numbers (J < 4) from planar-jet and liquid nitrogencellabsorption spectra of methane near 1.4 micron

Abstract

An improved procedure for accurate determination of empirical lower state rotational quantum numbers from molecular absorption spectra is demonstrated for methane. We combine the high resolution absorption spectra in the 7070–7300 cm−1 frequency range obtained in liquid nitrogen cooled cryogenic cell (T = 81 K) and in supersonic planar jet expansion (TR = 25 K). Empirical lower state energies of 59 transitions are determined from the ratio of the absolute absorption line strengths at 25 and 81 K. The procedure relies on the realistic description of rotational state populations in the supersonic jet expansion where non-equilibrium nuclear spin isomer distributions are generated due to the rapid cooling. The accuracy of the experimental determination of the lower state energies with J ≤ 3 is found to considerably improve the results of the same approach applied to spectra at 296 and 81 K. The 59 transitions with determined lower J values provide a good starting point for the theoretical interpretation of the highly congested icosad region of methane. In particular, the centres of nine vibrational bands are estimated from the transitions with J = 0 lower state rotational quantum number.

Graphical abstract: Accurate determination of low state rotational quantum numbers (J < 4) from planar-jet and liquid nitrogen cell absorption spectra of methane near 1.4 micron

Article information

Article type
Paper
Submitted
22 Oct 2009
Accepted
07 Jan 2010
First published
10 Feb 2010

Phys. Chem. Chem. Phys., 2010,12, 3145-3155

Accurate determination of low state rotational quantum numbers (J < 4) from planar-jet and liquid nitrogen cell absorption spectra of methane near 1.4 micron

O. Votava, M. Mašát, P. Pracna, S. Kassi and A. Campargue, Phys. Chem. Chem. Phys., 2010, 12, 3145 DOI: 10.1039/B922109C

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