Proton acceleration from nano-engineered targets using high-intensity short pulse lasers

POSTER

Abstract

A theoretical and experimental study of proton acceleration from planar gold targets covered with gold nanowires is presented. The nano-engineered foils composed of a flat substrate with thickness ranging from 7 to 20 μm and protruding gold nanowires having length equal to the foil thickness were irradiated by a short pulse high intensity laser (Hercules: 3 J, 1.5x1021 W/cm2, 30 fs, 1.5 μm focal spot). The nanowires enhance significantly the laser energy coupled to the plasma and maximum proton energies. Different nanowire and substrate parameters were tested showing that the most important parameter is the number of nanowires per focal spot, N. Theoretical analysis and experimental data indicate that optimum is reached for nanowire density of N=1. Proton spectra are compared to simulations using a 2D-3V Particle-In-Cell (PIC) code which reproduces the experimental data with a good agreement.

*This work is supported by the AFOSR under award number FA9550-14-1-0282

Presenters

  • George M Petrov

    • Naval Research Lab

Authors

  • George M Petrov

    • Naval Research Lab
  • Maylis M Dozieres

    • Univ of California - San Diego
    • UC San Diego
  • Pierre Forestier-Colleoni

    • Univ of California - San Diego
    • UC San Diego
  • Paul C Campbell

    • Univ of Michigan - Ann Arbor
  • Karl Michael Krushelnick

    • Univ of Michigan - Ann Arbor
    • University of Michigan
  • Anatoly M Maksimchuk

    • Univ of Michigan - Ann Arbor
  • Jorge Juan Rocca

    • Colorado State Univ
    • Colorado State University
  • Christopher S McGuffey

    • Univ of California - San Diego
    • UC San Diego
  • Farhat N Beg

    • Univ of California - San Diego
    • Center for Energy Research, University of California, San Diego
    • UC San Diego
    • University of California, San Diego