Stable laser-driven proton beam acceleration from a two-specie ultra-thin foil
Abstract
By using multi-dimensional particle-in-cell simulation, we present a new regime of stable proton beam acceleration which takes place when a two-specie shaped foil is illuminated by a circularly polarized laser pulse. It is observed that the lighter protons are nearly-instantaneously separated from the heavier carbon ions due to the charge-to-mass ratio difference. The heavy-ions layer extensively expands in space and acts to buffer the proton layer from the Rayleigh-Taylor-like (RT) instability that would have otherwise degraded the proton beam acceleration. A simple three-interface model is formulated to qualitatively explain the stabilization of the light-ions acceleration. Due to the absence of the RT-like instability, the produced high quality mono-energetic proton bunch can be well maintained even after the laser-foil interaction concludes.
Cite
@article{arxiv.0912.0396,
title = {Stable laser-driven proton beam acceleration from a two-specie ultra-thin foil},
author = {T. P. Yu and A. Pukhov and G. Shvets and M. Chen},
journal= {arXiv preprint arXiv:0912.0396},
year = {2015}
}
Comments
10 pages, 4 figures