Relativistic coupled-cluster single-double method applied to alkali-metal atoms
ORAL
Abstract
A relativistic version of the coupled-cluster single-double (CCSD) method is developed for atoms with a single valence electron. In earlier work, a linearized version of the CCSD method (with extensions to include a dominant class of triple excitations) led to accurate predictions for energies, transition amplitudes, hyperfine constants, and other properties of monovalent atoms. Further progress in high-precision atomic structure calculations for heavy atoms calls for improvement of the linearized coupled-cluster methodology. In the present work, equations for the single and double excitation coefficients of the Dirac-Fock wave function, including all non-linear coupled-cluster terms that contribute at the single-double level are worked out. Contributions of the non-linear terms to energies, electric-dipole matrix elements, and hyperfine constants of low-lying states in alkali-metal atoms from Li to Cs were systematically investigated. The effect of the core non-linear terms was found to be not negligible for heavier alkalies, reaching nearly 1\% of the total values of the Cs hyperfine constants. The final results are compared with other calculations and with precise experiments.
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Authors
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Rupsi Pal
University of Delaware
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Marianna Safronova
University of Delaware
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Walter Johnson
University of Notre Dame, Notre Dame University
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Andrei Derevianko
University of Nevada, Reno
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Sergey G. Porsev
University of Nevada, Reno and Petersburg Nuclear Physics Institute, Russia