Two-electron Excitation and Ionization in an Intense Laser Field
- 1 July 1989
- journal article
- research article
- Published by Taylor & Francis in Journal of Modern Optics
- Vol. 36 (7) , 925-940
- https://doi.org/10.1080/09500348914550991
Abstract
We present a simple model for two-electron excitation and ionization of an atom in the presence of an intense laser field. We show, in particular, how the Coulomb interaction, via configuration interaction, prevents the excitation and ionization from being collective in all but the most intense fields. By collective we mean that each electron has the same spatial wavefunction: this implies that the electron pair may be described by a restricted time-dependent Hartree-Fock wavefunction. The configuration interaction prevents collective behaviour not only through the process of auto-ionization but also through the mixing of doubly excited independent electron states into the ground state. We are able to give criteria for establishing true collective excitation and ionization of our model two-electron system in an intense field.Keywords
This publication has 12 references indexed in Scilit:
- Two-electron bound-free transitions in an intense laser fieldJournal of Physics B: Atomic, Molecular and Optical Physics, 1988
- Multiphoton excitation of autoionizing states of Mg: Line-shape studies of the 3statePhysical Review A, 1986
- Theoretical model of inner-shell excitation by outer-shell electronsPhysical Review Letters, 1986
- Double multiphoton ionisation via above-threshold ionisation in strontium atomsJournal of Physics B: Atomic and Molecular Physics, 1985
- Recent Developments in Semiclassical Floquet Theories for Intense-Field Multiphoton ProcessesPublished by Elsevier ,1985
- Calculation of collective energies from periodic time-dependent Hartree-Fock solutionsPhysical Review C, 1984
- Electron spectra from multiphoton ionization of xenon at 1064, 532, and 355 nmPhysical Review A, 1983
- Population trapping and dispersion in a three-level systemJournal of Physics B: Atomic and Molecular Physics, 1982
- Collective Oscillations in a Dense Electron Gas Containing a Fixed Point ChargePhysical Review B, 1965
- Effects of Configuration Interaction on Intensities and Phase ShiftsPhysical Review B, 1961