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Order-of-magnitude increase in laser-target coupling at near-relativistic intensities using compound parabolic concentrators

G. J. Williams1,*, A. Link1, M. Sherlock1, D. A. Alessi1, M. Bowers1, B. P. Golick1, M. Hamamoto1, M. R. Hermann1, D. Kalantar1 et al.

K. N. LaFortune1,†, A. J. Mackinnon1, A. MacPhee1, M. J.-E. Manuel2, D. Martinez1, M. Mauldin2, L. Pelz1, M. Prantil1, M. Quinn2, B. Remington1, R. Sigurdsson1, P. Wegner1, K. Youngblood2,‡, and Hui Chen1

  • 1Lawrence Livermore National Laboratory, Livermore, California 94550, USA
  • 2General Atomics, San Diego, California 92186, USA

  • *williams270@llnl.gov
  • †Present address: LCLS, SLAC National Accelerator Laboratory, Menlo Park, California 94025 USA.
  • ‡Present address: Lawrence Livermore National Laboratory, Livermore, California 94550, USA.

Phys. Rev. E 103, L031201 – Published 2 March, 2021

DOI: https://doi.org/10.1103/PhysRevE.103.L031201

Abstract

Achieving a high conversion efficiency into relativistic electrons is central to short-pulse laser application and fundamentally relies on creating interaction regions with intensities ≫1018W/cm2. Small focal length optics are typically employed to achieve this goal; however, this solution is impractical for large kJ-class systems that are constrained by facility geometry, debris concerns, and component costs. We fielded target-mounted compound parabolic concentrators to overcome these limitations and achieved nearly an order-of-magnitude increase to the conversion efficiency and more than tripled electron temperature compared to flat targets. Particle-in-cell simulations demonstrate that plasma confinement within the cone and formation of turbulent laser fields that develop from cone wall reflections are responsible for the improved laser-to-target coupling. These passive target components can be used to improve the coupling efficiency for all high-intensity short-pulse laser applications, particularly at large facilities with long focal length optics.

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