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Laser beam-profile impression and target thickness impact on laser-accelerated protons

  • M. Schollmeier
  • , K. Harres
  • , F. Nürnberg
  • , A. Blažević
  • , P. Audebert
  • , E. Brambrink
  • , J. C. Fernández
  • , K. A. Flippo
  • , D. C. Gautier
  • , M. Geißel
  • , B. M. Hegelich
  • , J. Schreiber
  • , M. Roth
  • Technische Universität Darmstadt
  • GSI Helmholtzzentrum fur Schwerionenforschung
  • MST-8, Los Alamos National Laboratory
  • Sandia National Laboratories, New Mexico
  • Universität München

Research output: Contribution to journalArticlepeer-review

Abstract

Experimental results on the influence of the laser focal spot shape onto the beam profile of laser-accelerated protons from gold foils are reported. The targets' microgrooved rear side, together with a stack of radiochromic films, allowed us to deduce the energy-dependent proton source-shape and size, respectively. The experiments show, that shape and size of the proton source depend only weakly on target thickness as well as shape of the laser focus, although they strongly influence the proton's intensity distribution. It was shown that the laser creates an electron beam that closely follows the laser beam topology, which is maintained during the propagation through the target. Protons are then accelerated from the rear side with an electron created electric field of a similar shape. Simulations with the Sheath-Accelerated Beam Ray-tracing for IoN Analysis code SABRINA, which calculates the proton distribution in the detector for a given laser-beam profile, show that the electron distribution during the transport through a thick target (50 μm Au) is only modified due to multiple small angle scattering. Thin targets (10 μm) show large source sizes of over 100 μm diameter for 5 MeV protons, which cannot be explained by multiple scattering only and are most likely the result of refluxing electrons.

Original languageEnglish
Article number053101
JournalPhysics of Plasmas
Volume15
Issue number5
DOIs
Publication statusPublished - 10 Jun 2008

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