Ir directamente a la navegación principal Ir directamente a la búsqueda Ir directamente al contenido principal

Generation of photoionized plasmas in the laboratory of relevance to accretion-powered x-ray sources using keV line radiation

  • D. Riley
  • , R. L. Singh
  • , S. White
  • , M. Charlwood
  • , D. Bailie
  • , C. Hyland
  • , T. Audet
  • , G. Sarri
  • , B. Kettle
  • , G. Gribakin
  • , S. J. Rose
  • , E. G. Hill
  • , G. J. Ferland
  • , R. J.R. Williams
  • , F. P. Keenan

Producción científica: Articlerevisión exhaustiva

5 Citas (Scopus)

Resumen

We describe laboratory experiments to generate x-ray photoionized plasmas of relevance to accretion-powered x-ray sources such as neutron star binaries and quasars, with significant improvements over previous work. A key quantity is referenced, namely the photoionization parameter, defined as ξ=4πF/ne where F is the x-ray flux and ne the electron density. This is normally meaningful in an astrophysical steady-state context, but is also commonly used in the literature as a figure of merit for laboratory experiments that are, of necessity, time-dependent. We demonstrate emission-weighted values of ξ>50 erg-cm s−1 using laser-plasma x-ray sources, with higher results at the centre of the plasma which are in the regime of interest for several astrophysical scenarios. Comparisons of laboratory experiments with astrophysical codes are always limited, principally by the many orders of magnitude differences in time and spatial scales, but also other plasma parameters. However useful checks on performance can often be made for a limited range of parameters. For example, we show that our use of a keV line source, rather than the quasi-blackbody radiation fields normally employed in such experiments, has allowed the generation of the ratio of inner-shell to outer-shell photoionization expected from a blackbody source with ∼keV spectral temperature. We compare calculations from our in-house plasma modelling code with those from Cloudy and find moderately good agreement for the time evolution of both electron temperature and average ionisation. However, a comparison of code predictions for a K-β argon X-ray spectrum with experimental data reveals that our Cloudy simulation overestimates the intensities of more highly ionised argon species. This is not totally surprising as the Cloudy model was generated for a single set of plasma conditions, while the experimental data are spatially integrated.

Idioma originalEnglish
Número de artículo101097
PublicaciónHigh Energy Density Physics
Volumen51
DOI
EstadoPublished - jun 2024

Nota bibliográfica

Publisher Copyright:
© 2024

Financiación

This work was supported by the United Kingdom Science and Technology Facilities Council through grant ST/P000312/1. We would like to thank the UK Central Laser Facility staff who run the laser, target area and target preparation facilities for their contributions. This work was supported by the UK Science and Technology Facilities Council through grant ST/P000312/1. We would like to thank the UK Central Laser Facility staff who run the laser, target area and target preparation facilities for their contributions.

FinanciadoresNúmero del financiador
United Kingdom Science and Technology Facilities Council
Science and Technology Facilities CouncilST/P000312/1
Science and Technology Facilities Council

    ASJC Scopus subject areas

    • Radiation
    • Nuclear and High Energy Physics

    Huella

    Profundice en los temas de investigación de 'Generation of photoionized plasmas in the laboratory of relevance to accretion-powered x-ray sources using keV line radiation'. En conjunto forman una huella única.

    Citar esto