Enhanced proton acceleration from an ultrathin target irradiated by laser pulses with plateau ASE

Sci Rep. 2018 Feb 7;8(1):2536. doi: 10.1038/s41598-018-20948-3.

Abstract

We report a simulation study on proton acceleration driven by ultraintense laser pulses with normal contrast (107-109) containing nanosecond plateau amplified spontaneous emission (ASE). It's found in hydrodynamic simulations that if the thickness of the targets lies in the range of hundreds nanometer matching the intensity and duration of ASE, the ablation pressure would push the whole target in the forward direction with speed exceeding the expansion velocity of plasma, resulting in a plasma density profile with a long extension at the target front and a sharp gradient at the target rear. When the main pulse irradiates the plasma, self-focusing happens at the target front, producing highly energetic electrons through direct laser acceleration(DLA) building the sheath field. The sharp plasma gradient at target rear ensures a strong sheath field. 2D particle-in-cell(PIC) simulations reveal that the proton energy can be enhanced by a factor of 2 compared to the case of using micrometer-thick targets.

Publication types

  • Research Support, Non-U.S. Gov't