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Observation of density-driven line shifts at 100 TPa

ORAL

Abstract

The deviation of an atomic transition from its isolated-atom energy is a direct consequence of a change in the local environment around the atom. At the extreme pressures characteristic of stellar interiors and inertial fusion plasmas, transition energies shift due to electrostatic interactions between the atomic states and the dense-plasma environment. Understanding the mechanism that drives these line shifts, and particularly the dependence on the thermodynamic state, will enable new spectroscopic diagnostics of dense plasmas. We present time-resolved measurements of a blue-shifting absorption spectrum of a mid-Z tracer layer compressed to 100 TPa in a stagnated, laser-driven implosion. We map the increase in energy of the 1s--2p-type inner-shell transitions and relate this to the evolving thermodynamic conditions. Plausible mechanisms for the line shifts are discussed.

Presenters

  • David T Bishel

    University of Rochester

Authors

  • David T Bishel

    University of Rochester

  • Philip M Nilson

    Lab for Laser Energetics, Laboratory for Laser Energetics

  • David A Chin

    University of Rochester

  • John J Ruby

    Lawrence Livermore National Laboratory

  • Edward V Marley

    Lawrence Livermore Natl Lab, Lawrence Livermore National Laboratory

  • Suxing Hu

    Laboratory for Laser Energetics, University of Rochester

  • Ethan Smith

    University of Rochester

  • Reuben Epstein

    University of Rochester

  • Igor E Golovkin

    Prism Computational Sciences

  • James Ryan Rygg

    Dept. of Mechanical Engg, Dept. of Physics and Astronomy, University of Rochester. Laboratory for Laser Energy, Rochester, NY, USA.

  • Gilbert W Collins

    University of Rochester