4.7 Article

Theoretical spectroscopy study of the low-lying electronic states of UX and UX+, X = F and Cl

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 143, Issue 18, Pages -

Publisher

AIP Publishing
DOI: 10.1063/1.4935492

Keywords

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Funding

  1. U.S. Department of Energy, Office of Basic Energy Sciences, Heavy Element Chemistry Program [DE-FG02-12ER16329]

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Spectroscopic constants (T-e, r(e), B-0, omega(e), and omega(e)x(e)) have been calculated for the low-lying electronic states of UF, UF+, UCl, and UCl+ using complete active space 2nd-order perturbation theory (CASPT2), with a series of correlation consistent basis sets. The latter included those based on both pseudopotential (PP) and all-electron Douglas-Kroll-Hess Hamiltonians for the U atom. Spin orbit (SO) effects were included a posteriori using the state interacting method using both PP and Breit Pauli (BP) operators, as well as from exact two-component methods for U+ and UF+. Complete basis set (CBS) limits were obtained by extrapolation where possible and the PP and BP calculations were compared at their respective CBS limits. The PP-based method was shown to be reliable in calculating spectroscopic constants, in particular when using the state interacting method with CASPT2 energies (SO-CASPT2). The two component calculations were limited by computational resources and could not include electron correlation from the nominally closed shell 6s and 6p orbitals of U. UF and UCl were both calculated to have Omega = 9/2 ground states. The first excited state of UCl was calculated to be an Omega = 7/2 state at 78 cm(-1) as opposed to the same state at 435 cm(-1) in UF, and the other low-lying states of UC1 showed a similar compression relative to UF. Likewise, UF+ and UCl+ both have Omega = 4 ground states and the manifold of low-lying excited Omega = 3, 2, 1, 0 states was energetically closer together in UCl+ than in UF+, ranging up to 776 cm(-1) in UF+ and only 438 cm(-1) in UCl+. As in previous studies, the final PP-based SO-CASPT2 results for UF+ and UF agree well with experiment and are expected to be predictive for UCl and UCl+, which are reported here for the first time. (C) 2015 AIP Publishing LLC.

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