AI Article Synopsis

  • The energy levels of uranium ions U(5+) and U(4+) were calculated using advanced methods that consider relativistic effects and electron interactions.
  • The study compares different computational techniques, specifically MS-CASPT2 and MRCI, finding that MS-CASPT2 provides lower energy values than MRCI, especially for the highest energy state of the U(4+) ion.
  • Results align well with experimental data, demonstrating the effectiveness of the methods used for analyzing heavy elements in spectroscopy.

Article Abstract

The energy levels of the 5f configuration of U(5+) and 5f(2) configuration of U(4+) have been calculated in a dressed effective Hamiltonian relativistic spin-orbit configuration interaction framework. Electron correlation is treated in the scalar relativistic scheme with either the multistate multireference second-order multiconfigurational perturbation theory (MS-CASPT2) or with the multireference single and double configuration interaction (MRCI) and its size-extensive Davidson corrected variant. The CASPT2 method yields relative energies which are lower than those obtained with the MRCI method, the differences being the largest for the highest state (1)S(0) of the 5f(2) manifold. Both valence correlation effects and spin-orbit polarization of the outer-core orbitals are shown to be important. The satisfactory agreement of the results with experiments and four-component correlated calculations illustrates the relevance of dressed spin-orbit configuration interaction methods for spectroscopy studies of heavy elements.

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Source
http://dx.doi.org/10.1063/1.2888560DOI Listing

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