The extended stretch-bender Hamiltonian, incorporating spin-orbit coupling and overall rotation, has been used to calculate the spin-vibronic structure of the X 2 B 1 state of NH 2 up to the barrier to linearity of this state. A detailed comparison has been made with experimental measurements of the
The Effects of Nonzero Total Electron Spin in theX̃3B1State of Methylene CH2
✍ Scribed by Igor N. Kozin; Per Jensen
- Publisher
- Elsevier Science
- Year
- 1997
- Tongue
- English
- Weight
- 248 KB
- Volume
- 183
- Category
- Article
- ISSN
- 0022-2852
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✦ Synopsis
We report here how we have incorporated the effects of a nonzero total electron spin in the MORBID Hamiltonian and computer program [P. Jensen, J. Mol. Spectrosc. 128, 478-501 (1988); J. Chem. Soc. Faraday Trans. 2 84, 1315-1340 (1988); in "Methods in Computational Molecular Physics" (S. Wilson and G. H. F. Diercksen, Eds.), Plenum Press, New York, 1992] for calculating the rovibronic energies of a triatomic molecule directly from the potential energy function. The spin-spin and spin-rotation Hamiltonian terms, given in a form depending on the vibrational coordinates, have been expressed in terms of isotope-independent functions and added to the MORBID rotation-vibration Hamiltonian. The eigenvalues of the resulting Hamiltonian are obtained in a variational procedure. This method is tested on the methylene radical CH2 in the X ; 3 B 1 electronic ground state for which we describe simultaneously the splittings due to electron spin for the isotopomers 12 CH2 , 12 CD2 , and 13 CH2 . For these molecules, experimental data are available, and we compare the results of least-squares fits to these data with predictions from ab initio theory.
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