The nuclear-spin-forbidden rovibrational transitions of water from first principles
arXiv:2203.07945 · doi:10.1063/5.0090771
Abstract
The water molecule occurs in two nuclear-spin isomers that differ by the value of the total nuclear spin of the hydrogen atoms, i.e., for para-HO and for ortho-HO. Spectroscopic transitions between rovibrational states of ortho and para water are extremely weak due to the tiny hyperfine nuclear-spin-rotation interaction of only kHz and so far were not observed. We report the first comprehensive theoretical investigation of the hyperfine effects and ortho-para transitions in HO due to nuclear-spin-rotation and spin-spin interactions. We also present the details of our newly developed general variational approach to the simulation of hyperfine effects in polyatomic molecules. Our results for water suggest that the strongest ortho-para transitions with room-temperature intensities on the order of cm/molecule are about an order of magnitude larger than previously predicted values and should be detectable in the mid-infrared and near-infrared and bands by current spectroscopy experiments.
References in corpus (6)
- The 2020 release of the ExoMol database: molecular line lists for exoplanet and other hot atmospheres
- Symmetry adapted ro-vibrational basis functions for variational nuclear motion calculations: TROVE approach
- The composition of the protosolar disk and the formation conditions for comets
- Molecular Collisions: from Near-cold to Ultra-cold
- Electric quadrupole transitions in carbon dioxide
- General variational approach to nuclear-quadrupole coupling in rovibrational spectra of polyatomic molecules