Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5415847 | Journal of Molecular Spectroscopy | 2007 | 8 Pages |
Abstract
The Bâ¼â²2Σ+ and Dâ¼2Σ+ states of SrOH were investigated using optical-optical double-resonance (OODR) spectroscopy. Rotational and fine structure parameters have been determined for these two states through a combined least-squares fit of the current OODR data along with the OODR data of the Câ¼2Î -Aâ¼2Î transition, the optical data of the Aâ¼2Î -Xâ¼2Σ+ transition and the millimeter-wave pure rotational measurements of the Xâ¼2Σ+ state. The spin-rotation constant, γ, of the Bâ¼â²2Σ+ state was found to be 0.002653 cmâ1, which is two orders of magnitude smaller than that of the Bâ¼2Σ+ state (â0.1447 cmâ1). This small γ value suggests that this state arises from a Sr+ atomic orbital of mainly 6sÏ character. This atomic orbital assignment is also supported by the large rotational constant observed in the Bâ¼â²2Σ+ state and the similarity of the molecular constants to those of the Dâ¼2Σ+ state of CaOH. The rotational energy levels of the Dâ¼2Σ+state of SrOH were found to be largely perturbed, which prohibited the accurate determination of the spin-rotation constant in this state. This perturbation is most likely due to an interaction with a 2Σ vibronic component of the nearby Câ¼2Î state.
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Physical and Theoretical Chemistry
Authors
J.-G. Wang, M.J. Dick, P.M. Sheridan, S. Yu, P.F. Bernath,