Kinetic effects on the transition to relativistic self-induced transparency in laser-driven ion acceleration

ORAL

Abstract

We study kinetic effects responsible for the transition to relativistic self-induced transparency in the interaction of a circularly-polarized laser-pulse with an overdense plasma and their relation to hole-boring and ion acceleration. It is shown, using particle-in-cell simulations and an analysis of separatrices in single-particle phase-space, that this transition is mediated by the complex interplay of fast electron dynamics and ion motion at the initial stage of the interaction. It thus depends on the ion charge-to-mass ratio and can be controlled by varying the laser temporal profile. Moreover, we find a new regime in which a transition from relativistic transparency to hole-boring occurs dynamically during the course of the interaction. It is shown that, for a fixed laser intensity, this dynamic transition regime allows optimal ion acceleration in terms of both energy and energy spread.

*This work was supported by the Knut and Alice Wallenberg Foundation (\textsc{pliona} project) and the European Research Council (ERC-2014-CoG grant 647121)

Authors

  • Evangelos Siminos

    • Department of Physics, Chalmers University of Technology, Gothenburg, Sweden
  • Benjamin Svedung Wettervik

    • Department of Physics, Chalmers University of Technology, Gothenburg, Sweden
  • Mickael Grech

    • LULI, CNRS, UPMC, Ecole Polytechnique, CEA, 91128 Palaiseau, France
  • T\"unde F\"ul\"op

    • Department of Physics, Chalmers University of Technology, Gothenburg, Sweden