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Non-Maxwellian electron distributions in time-dependent simulations of low-Z materials illuminated by a high-intensity X-ray laser

  • Alberto G. De la Varga
  • , Pedro Velarde
  • , François de Gaufridy
  • , David Portillo
  • , Manuel Cotelo
  • , Alfonso Barbas
  • , Agustín González
  • , Philippe Zeitoun
  • Instituto de Fusión Nuclear
  • Institute of Physics of the Czech Academy of Sciences

Research output: Contribution to journalArticlepeer-review

Abstract

The interaction of high intensity X-ray lasers with matter is modeled. A collisional-radiative time-dependent module is implemented to study radiation transport in matter from ultrashort and ultraintense X-ray bursts. Inverse bremsstrahlung absorption by free electrons, electron conduction or hydrodynamic effects are not considered. The collisional-radiative system is coupled with the electron distribution evolution treated with a Fokker-Planck approach with additional inelastic terms. The model includes spontaneous emission, resonant photoabsorption, collisional excitation and de-excitation, radiative recombination, photoionization, collisional ionization, three-body recombination, autoionization and dielectronic capture. It is found that for high densities, but still below solid,collisions play an important role and thermalization times are not short enough to ensure a thermal electron distribution. At these densities Maxwellian and non-Maxwellian electron distribution models yield substantial differences in collisional rates, modifying the atomic population dynamics.

Original languageEnglish
Pages (from-to)542-547
Number of pages6
JournalHigh Energy Density Physics
Volume9
Issue number3
DOIs
Publication statusPublished - 1 Sept 2013

Keywords

  • Non-LTE
  • Non-Maxwellian electron distribution
  • Time-dependent atomic kinetics

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