The dipole moment function and vibrational transition intensities of OH
- 15 May 1989
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 90 (10) , 5455-5465
- https://doi.org/10.1063/1.456451
Abstract
The relative intensities of nine pairs of rovibrational transitions of OH in the v=1←0 fundamental have been measured by flash kinetic infrared absorption spectroscopy. Each pair of transitions originates from a common rotational and spin–orbit state, so that relative intensities are independent of the OH number density and quantum state distribution. The relative intensities are strongly J dependent and this dependence provides detailed information about the shape of the OH dipole moment function, μ(r), and hence the absolute infrared transition strengths. In an accompanying paper we present the theoretical basis for extracting μ(r), for an open shell diatomic like OH, from relative infrared intensities and permanent dipole moment measurements (Peterson et al.). In this work we implement those ideas and determine the OH dipole moment function to be: μ(r)=1.6498(6) D+0.561(32) D/Å (r−re )−0.75(17) D/Å2 (r−re )−1.5(11) D/Å3(r−re )3. The accuracy of μ(r) is excellent near re (re =0.970 Å), since the data used to derive it are from low vibrational states. The useful range of this function extends from approximately 0.75 to 1.35 Å. The rotationless Einstein A coefficient for the OH fundamental is determined from μ(r) to be 16.7(19) Hz. This is in considerable disagreement with most other experimental and theoretical results, but is in good agreement with theoretical calculations by Mies (18.3 Hz) and by Langhoff et al. (13.8 Hz).Keywords
This publication has 32 references indexed in Scilit:
- On the dipole moment functions of ClO and OHThe Journal of Chemical Physics, 1988
- A general procedure for the theoretical study of the Λ-doublingMolecular Physics, 1988
- Excitation mechanism for hydroxyl(A) in the argon fluoride excimer laser photolysis of nitric acidThe Journal of Physical Chemistry, 1986
- Vibrational relaxation of OH(v= 1) and OD(v= 1) by HNO3, DNO3, H2O, NO and NO2Journal of the Chemical Society, Faraday Transactions 2: Molecular and Chemical Physics, 1985
- Electric dipole moment of X2Π OH and OD in several vibrational statesCanadian Journal of Physics, 1984
- OH(X 2Π) state distribution from HNO3 and H2O2 photodissociation at 193 nmThe Journal of Chemical Physics, 1983
- Rotational analysis of hydroxyl vibration–rotation emission bands: Molecular constants for OH X2Π, 6 ≤ ν ≤ 10Canadian Journal of Physics, 1982
- Study of the ground state potential curve and dipole moment of OH by the method of optimized valence configurationsThe Journal of Chemical Physics, 1974
- Gas-phase ultraviolet absorption spectrum of nitric acid vaporThe Journal of Physical Chemistry, 1973
- OH Emission Bands in the Spectrum of the Night Sky. II.The Astrophysical Journal, 1950