Nonlinear pulse propagation and phase velocity of laser-driven plasma waves

POSTER

Abstract

We investigate and characterize the laser evolution and plasma wave excitation by a relativistically intense, short-pulse laser propagating in a preformed parabolic plasma channel, including the effects of pulse steepening, frequency redshifting, and energy depletion. We derived in 3D, and in the weakly relativistic intensity regime, analytical expressions for the laser energy depletion, the pulse self-steepening rate, the laser intensity centroid velocity, and the phase velocity of the plasma wave. Analytical results have been validated numerically using the 2D-cylindrical, ponderomotive code INF\&RNO. We also discuss the extension of these results to the nonlinear regime, where an analytical theory of the nonlinear wake phase velocity is lacking.

*Work supported by the Office of Science, Office of High Energy Physics, of the U.S. Department of Energy under Contract No. DE-AC02-05CH11231.

Authors

  • Carlo Benedetti

    • Lawrence Berkeley Natl Lab
  • Francesco Rossi

    • Department of Physics and Astronomy, University of Bologna, Bologna, Italy
  • Carl Schroeder

    • Lawrence Berkeley Natl Lab
  • Eric Esarey

    • Lawrence Berkeley Natl Lab
  • Wim Leemans

    • Lawrence Berkeley Natl Lab