The potential energy surface for the electronic ground state of CO 2 is refined by means of a two-step variational procedure using the exact rovibrational Hamiltonian in the bond length-bond angle coordinates. In the refinement, the observed rovibrational energy levels for J = 0-4 below 16,000 cm -1
A Potential Energy Surface for the Electronic Ground State of H2Te Derived from Experiment
✍ Scribed by P.C. Gómez; Per Jensen
- Publisher
- Elsevier Science
- Year
- 1997
- Tongue
- English
- Weight
- 312 KB
- Volume
- 185
- Category
- Article
- ISSN
- 0022-2852
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✦ Synopsis
We report here the determination of a new potential energy surface for the electronic ground state of the H 2 Te molecule by fitting to an extensive set of very recent experimental spectroscopic data (see J.-M. Flaud, P. Arcas, H. Bu ¨rger, O. Polanz, and L. Halonen, J. Mol. Spectrosc. 183, 310-335 (1997), and references therein) by means of the MORBID (Morse Oscillator Rigid Bender Internal Dynamics) computer program. The fitting to all 1111 input data (involving rotation-vibrational states with J £ 10) had a standard deviation of 0.18 cm 01 and was obtained by varying 14 parameters. With the new potential energy function, the rotation-vibration energies of H 2 Te have been calculated with the MORBID program. In particular, we have calculated the rotational energy manifolds for J £ 40 in the lowest vibrational states. Compared to previous potential energy functions for H 2 Te, the new function has substantially improved the reproduction of the rotational spacings in the excited vibrational states. An important aim of the present work is the further characterization of the anomalous ''fourfold cluster effect'' (i.e., the formation of four-member groups of nearly degenerate rotation-vibration energies at high rotational excitation) exhibited by the energy levels of H 2 Te. Comparison of our theoretical results with the experimental results of J.-M.
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