Quality-preserving laser-plasma ion beam booster via hollow-channel magnetic vortex acceleration

ORAL

Abstract

Laser-driven ion acceleration offers ultra-short (10s of fs for 10s of MeV), high-charge (100s of pC), and ultra-low slice emittance particle bunches. Mastering these sources can have a high impact on fundamental and applied research applications in physics, industry, and society, ranging from next-generation hadron colliders or neutrino factories, drivers for inertial fusion energy, radiotherapy, nuclear physics, warm-dense matter research, secondary radiation generation for material research and security applications, and possibly even radiation hardness of spacecraft. Despite clear progress in the last decades, particularly in the maximum ion energy using 1-10 Joule class laser systems, the desired energies for some applications still cannot be reached. Relieving the requirements imposed by a single laser-ion source, we present a staging concept that boosts a proton beam into the desired energy regime of 100s of MeV/u within a few compact, beam-quality-preserving plasma stages. Our approach is based on magnetic vortex acceleration, using near-critical density targets with a pre-formed hollow channel to boost the energy of a temporally matched ultra-intense proton bunch. With fully self-consistent 3D particle-in-cell simulations using the exascale code WarpX, we demonstrate robustness in bunch acceptance (temporal and spatial), transport, energy boost, energy spread, and emittance preservation, using current and near-term available laser-system parameters.

*We acknowledge all WarpX contributors. This material is based upon work supported by the Defense Advanced Research Projects Agency via Northrop Grumman Corporation. Partly supported by the U.S. DOE FES Postdoctoral Research Program, administered by ORISE under contract DE-SC0014664, the U.S. DOE Office of Science Offices of ASCR, HEP, and FES (incl. LaserNetUS) under Contract No. DE-AC02-05CH11231, and the Exascale Computing Project (17-SC-20-SC). This research used resources of the Oak Ridge Leadership Computing Facility at the ORNL (DE-AC05-00OR22725, ALCC program) and the National Energy Research Scientific Computing Center (DE-AC02-05CH11231, FES-ERCAP0024250).

Publication: Laser-plasma ion beam booster based on hollow-channel magnetic vortex acceleration (Phys. Rev. Research; accepted)
https://journals.aps.org/prresearch/accepted/3507dY2dYce1be83d3ce46d1e5c65d3171c681f20

arXiv Preprint:
https://arxiv.org/abs/2308.04745

Presenters

  • Marco Garten

    • Lawrence Berkeley National Laboratory

Authors

  • Marco Garten

    • Lawrence Berkeley National Laboratory
  • Stepan S Bulanov

    • Lawrence Berkeley National Laboratory
  • Sahel Hakimi

    • Avalanche Energy
    • Lawrence Berkeley National Laboratory
  • Lieselotte Obst-Huebl

    • Lawrence Berkeley National Laboratory
  • Chad Eugene Mitchell

    • Lawrence Berkeley National Laboratory
  • Carl B Schroeder

    • Lawrence Berkeley National Laboratory
  • Eric Esarey

    • Lawrence Berkeley National Laboratory
  • Cameron Robinson Geddes

    • Lawrence Berkeley National Laboratory
  • Jean-Luc Vay

    • Lawrence Berkeley National Laboratory
  • Axel Huebl

    • Lawrence Berkeley National Laboratory