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Ab initio spin-orbit CI calculations of the potential curves and radiative lifetimes of low-lying states of lead monofluoride
Author(s) -
Kalyan K. Das,
Ioannis D. Petsalakis,
Heinz–Peter Liebermann,
Aleksey B. Alekseyev,
Robert J. Buenker
Publication year - 2002
Publication title -
the journal of chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.071
H-Index - 357
eISSN - 1089-7690
pISSN - 0021-9606
DOI - 10.1063/1.1423944
Subject(s) - ab initio , hamiltonian (control theory) , atomic physics , configuration interaction , excited state , relativistic quantum chemistry , physics , eigenfunction , radiative transfer , ground state , ab initio quantum chemistry methods , electronic correlation , hamiltonian matrix , potential energy , chemistry , electron , quantum mechanics , eigenvalues and eigenvectors , molecule , mathematical optimization , mathematics , symmetric matrix
The electronic structure of the lead monofluoride molecule is studied by means of ab initio configuration interaction (CI) calculations including the spin-orbit interaction. Potential-energy curves are generated for a large number of electronic states, of which only the X1 2Π1/2 ground and X2 2Π3/2 and A 2Σ+ excited states have been observed experimentally. Two different methods are compared for the inclusion of spin-orbit effects in the theoretical treatment, a contracted CI which employs a basis of large-scale Λ–S eigenfunctions to form a rather small matrix representation of the full relativistic Hamiltonian (two-step approach), and a more computationally laborious technique which involves solution of a secular equation of order 250 000 S2 eigenfunctions of different spin and spatial symmetry to achieve a potentially more evenly balanced description of both relativistic and electron correlation effects (one-step approach). In the present application, it is found that both methods achieve quite good agr...

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