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  • 1
    Electronic Resource
    Electronic Resource
    College Park, Md. : American Institute of Physics (AIP)
    The Journal of Chemical Physics 110 (1999), S. 11294-11302 
    ISSN: 1089-7690
    Source: AIP Digital Archive
    Topics: Physics , Chemistry and Pharmacology
    Notes: The electronic spectrum of the BiS molecule is described by means of relativistic configuration interaction (CI) calculations employing effective core potentials. Spin-orbit coupling causes the Ω=3/2 components of the X 2Π and A 4Π Λ–S states to undergo an avoided crossing which causes perturbations to occur in the observed X2–X1 band system beginning at v′=5. The present calculations are able to explain these results on a nearly quantitative basis. Spectroscopic constants are computed for nine BiS states up to 20 000 cm−1 and generally good agreement is found between theoretical and available measured values. Four of these states have not yet been observed experimentally and thus the present results should aid in subsequent searches for them. In addition, radiative lifetimes and electric dipole moments have been calculated for each of the BiS states with the relativistic CI wave functions. Finally, these results have been compared in detail with the analogous spectral data for the isovalent BiO molecule. © 1999 American Institute of Physics.
    Type of Medium: Electronic Resource
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  • 2
    ISSN: 1089-7690
    Source: AIP Digital Archive
    Topics: Physics , Chemistry and Pharmacology
    Notes: Computational strategies for the treatment of relativistic effects including spin-orbit coupling at a highly correlated level are compared for a number of heavy atoms: indium, iodine, thallium, and astatine. Initial tests with perturbation theory emphasize the importance of high-energy singly excited configurations which possess large spin-orbit matrix elements with the ground state. A contracted basis consisting of L–S CI eigenfunctions (LSC–SO–CI) is found to give an accurate representation of both spin-perturbed 2Po components as long as key np→pi* singly excited configurations are included. Comparison is made with a more extensive treatment in which all selected configurations of various L–S symmetries form the basis for the multireference–spin-orbit–configuration interaction (MR–SO–CI). Good agreement is obtained with experimental SO splittings for the In, I, and At atoms at a variety of levels of treatment, indicating that the L–S contracted SO–CI approach can be implemented quite effectively with relativistic effective core potentials (RECPs) for both very electronegative atoms and also for lighter electropositive elements up through the fifth row of the periodic table. The thallium atom SO splitting is more difficult to obtain accurately because of greater differences between its valence p1/2 and p3/2 spinors than in the other cases studied, but good results are also possible with the contracted SO–CI approach in this instance, provided proper care is given to the inclusion of key singly excited L–S states. The relationship between all-electron two-component SO–CI treatments and those employing RECPs is also analyzed, and it is concluded that triply excited configurations relative to the 2Po ground state are far less important than previously reported. © 1998 American Institute of Physics.
    Type of Medium: Electronic Resource
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  • 3
    Electronic Resource
    Electronic Resource
    College Park, Md. : American Institute of Physics (AIP)
    The Journal of Chemical Physics 108 (1998), S. 7695-7706 
    ISSN: 1089-7690
    Source: AIP Digital Archive
    Topics: Physics , Chemistry and Pharmacology
    Notes: An ab initio configuration interaction (CI) study including the spin–orbit interaction is carried out for numerous valence and Rydberg states of the SbH radical by employing a relativistic effective core potential for the antimony atom. The computed spectroscopic constants are in good agreement with available experimental data, with a tendency toward a slight overestimation of bond lengths (by 0.01–0.03 Å) and Te values (by 370–550 cm−1) for the lowest singlet states. Measured excitation energies and spin–orbit splittings for the A 3Π multiplet are also accurately reproduced in the present calculations and the Ω=0−, 1, and 2 components of this state are shown to be strongly predissociated due to spin–orbit interaction with the corresponding components of the repulsive 5Σ− state. The most stable representative of the A 3Π multiplet, A40+, is found to possess a very unusual potential curve with a double minimum and a fairly low barrier to dissociation. Based on a vibrational analysis of this state it is concluded that the earlier observed B0+ and C0+ electronic states should be attributed to the v=0 and 2 vibrational levels of the A40+ state, while the state experimentally assigned as A 3Π0+ corresponds to the A40+, v=1 level. Dipole moments μ(v=0) for the ...σ2π2 X3Σ−, a 1Δ and b 1Σ+ states are computed to have small (e.g., −0.238 D for X1 3Σ0+−) and nearly equal negative values (Sb+H− polarity). The dipole transition moments and the corresponding radiative lifetimes for a number of low-energy electronic transitions have also been computed. Many other bound states and avoided crossings are indicated in the calculations which may be of relevance in future experimental studies of this system. © 1998 American Institute of Physics.
    Type of Medium: Electronic Resource
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