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      Methods, algorithms and computer codes for calculation of electron-impact excitation parameters

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          Abstract

          We describe the computer codes, developed at Vilnius University, for the calculation of electron-impact excitation cross sections, collision strengths, and excitation rates in the plane-wave Born approximation. These codes utilize the multireference atomic wavefunctions which are also adopted to calculate radiative transition parameters of complex many-electron ions. This leads to consistent data sets suitable in plasma modelling codes. Two versions of electron scattering codes are considered in the present work, both of them employing configuration interaction method for inclusion of correlation effects and Breit-Pauli approximation to account for relativistic effects. These versions differ only by one-electron radial orbitals, where the first one employs the non-relativistic numerical radial orbitals, while another version uses the quasirelativistic radial orbitals. The accuracy of produced results is assessed by comparing radiative transition and electron-impact excitation data for neutral hydrogen, helium and lithium atoms as well as highly-charged tungsten ions with theoretical and experimental data available from other sources.

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          Energy levels for the stable isotopes of atomic helium(4He I and 3He I)

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            Electron excitation of the lithium 6708-Å resonance line

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              Scaling of plane-wave Born cross sections for electron-impact excitation of neutral atoms

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                Author and article information

                Journal
                07 April 2015
                Article
                10.3952/lithjphys.54201
                1504.01698
                6feed3a1-fb66-4b62-aba5-a4139492cd29

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                Lith. J. Phys. 54, 67 (2014)
                Lithuan. J. Physics
                physics.atom-ph

                Atomic & Molecular physics
                Atomic & Molecular physics

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