The (0,0) vibronic band of NiCl system H near 12 259 cm -1 was recorded at high resolution in absorption using intracavity laser spectroscopy (ILS) and in emission by Fourier transform (FT) spectroscopy. Though it was originally assigned in 1962 as the (1,1) vibronic band of 2 3/2 -X 2 5/2 , we have
Intracavity Laser Spectroscopy of NiCl System G: Identification of a [13.0] 2Π3/2 State
✍ Scribed by James J. O'Brien; Joel S. Miller; L.C. O'Brien
- Publisher
- Elsevier Science
- Year
- 2002
- Tongue
- English
- Weight
- 205 KB
- Volume
- 211
- Category
- Article
- ISSN
- 0022-2852
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✦ Synopsis
The (0,0) vibronic band of NiCl system G with a bandhead near 12 961 cm -1 was recorded at high resolution in absorption using intracavity laser spectroscopy (ILS). For the ILS absorption spectra, the NiCl molecules were produced in a nickel hollow cathode, operated with a small amount of CCl 4 , and line positions were referenced to iodine spectra. Fourier transform (FT) emission spectroscopy was used to record an extensive region of the spectrum used in a vibronic analysis of system G. For the FT spectra, excited NiCl molecules were produced in a high-temperature King-type carbon tube furnace. We show that this transition is the (0,0) vibronic band associated with a newly identified 2 3/2 excited state and the X 2 3/2 ground state. The molecular constants for the new 2 3/2 electronic state are derived from the rotational analysis. Improved vibronic constants for the band are obtained from analysis of the FT spectra.
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