Simulations of Phonon Modes in Laser-Plasma Compressed Solids

ORAL

Abstract

Shock and quasi-isentropic compression of solid-state matter via laser-ablation affords the creation of high energy density states of matter, with pressures and temperatures of relevance to core conditions within planets in our own solar system and beyond. Crystallographic phase and density can be discerned via ultra-fast x-ray diffraction, whilst pressure is deduced from VISAR measurements. Temperature is more difficult to determine, but techniques based on inelastic scattering from phonons are being considered [1]. It is in this context that we present here multi-million atom molecular dynamics simulations of the phonons present in fcc crystals shocked beyond their elastic limit. Despite high dislocation densities behind the shock front, distinct phonon modes can still easily be discerned, though such defects do contribute to the quasi-elastic peak that will compete with any inelastic scattering signal in a real experiment. Changes in the dispersion curves due to compression and the high number of stacking faults can also be observed. [1] E.E. McBride et al., Rev. Sci. Instrum. 89, 10F104 (2018)

Authors

  • Oliver Karnbach

    • University of Oxford
  • Patrick Heighway

    • University of Oxford
    • University of Oxford, UK
  • Gianluca Gregori

    • University of Oxford
    • Department of Physics, Clarendon Laboratory, Parks Road, University of Oxford, OX1 3PU, UK
    • Department of Physics, University of Oxford
  • Justin Wark

    • University of Oxford, UK
    • University of Oxford
  • David McGonegle

    • AWE Aldermaston, UK
  • Andrew Comley

    • AWE Aldermaston, UK
  • Robert Rudd

    • Lawrence Livermore National Laboratory
    • LLNL
    • Lawrence Livermore Natl Lab