Reduced divergence of laser-accelerated proton beams due to a low-density plasma surrounding the target

ORAL

Abstract

Protons accelerated by target normal sheath acceleration typically have a high divergence, in the order of tens of degrees. However, for many applications lower divergence proton beams are beneficial, especially where the beam needs to be captured and transported or where a high proton flux density is required. Proton beams with divergences of 1-2 degrees have been observed from the interaction of a high-intensity laser pulse with a planar liquid sheet target; particle-in-cell simulations indicated that the low divergence may be attributed to interaction of the proton beam with a low-density plasma formed from the vapour surrounding the target [Streeter et.al. in submission]. The influence of a low-density background plasma has been studied further using gas around a foil target, providing independent control of the proton source and the background plasma. Measurements indicate that the divergence of the beam reduced when the background gas was present, with little impact on the maximum proton energy, presenting a potential method for generating low divergence proton beams compatible with multi-Hz repetition rates.

Publication: M. J. V. Streeter, G. D. Glenn, S. DiIorio, F. Treffert, B. Loughran, H. Ahmed, S. Astbury, M. Borghesi, N. Bourgeois, C. B. Curry, S. J. D. Dann, N. P. Dover, T. Dzelzainis, O. C. Ettlinger, M. Gauthier, L. Giuffrida, S. H. Glenzer, R. J. Gray, J. S. Green, G. S. Hicks, C. Hyland, V. Istokskaia, M. King, D. Margarone, O. McCusker, P. McKenna, Z. Najmudin, C. Parisuaña, P. Parsons, C. Spindloe, D. R. Symes, A. G. R. Thomas, N. Xu, and C. A. J. Palmer, "Stable laser-acceleration of high-flux proton beams with plasma collimation," In Submission.

Presenters

  • Peter Parsons

    • Queen's University Belfast

Authors

  • Peter Parsons

    • Queen's University Belfast
  • Hamad Ahmed

    • Central Laser Facitlity, STFC Rutherford Appleton Laboratory
  • Chris D Armstrong

    • Central laser Facility, STFC Rutherford Appleton Laboratory
  • Marco Borghesi

    • Queen's University Belfast
  • Ginevra Casati

    • Imperial College London
  • Chandra Breanne Curry

    • SLAC National Accelerator Laboratory
  • Nicholas Peter Dover

    • Imperial College London
  • Thomas Dzelzainis

    • Central laser Facility, STFC Rutherford Appleton Laboratory
  • Oliver C Ettlinger

    • Imperial College London
  • Timothy Frazer

    • University of Strathclyde
  • Maxence Gauthier

    • SLAC - National Accelerator Laboratory
  • Siegfried H Glenzer

    • SLAC National Accelerator Laboratory
  • Ross Gray

    • University of Strathclyde
  • James S Green

    • Central laser Facility, STFC Rutherford Appleton Laboratory
  • Thomas Hall

    • Central laser Facility, STFC Rutherford Appleton Laboratory
  • George S Hicks

    • Imperial College London
  • Kate Lancaster

    • University of York
  • Brendan Loughran

    • Queen's University Belfast
  • Daniele Margarone

    • ELI Beamlines
    • ElI Beamlines
  • Paul McKenna

    • University of Strathclyde
  • Zulfikar Najmudin

    • Imperial College London
  • Radhika Nayli

    • University of Strathclyde
  • Matthew Oliver

    • Central laser Facility, STFC Rutherford Appleton Laboratory
  • Christopher P Ridgers

    • University of York
  • Nathan Smith

    • University of York
  • Matthew Streeter

    • Queen's University Belfast
  • Ben Torrance

    • University of Strathclyde
  • Alec G.R. Thomas

    • University of Michigan
    • Michigan University
  • Charlotte A Palmer

    • Queen's University Belfast