Laser opacity in underdense preplasma of solid targets due to quantum electrodynamics effects
Abstract
We investigate how next-generation laser pulses at 10 PW 200 PW interact with a solid target in the presence of a relativistically underdense preplasma produced by amplified spontaneous emission (ASE). Laser hole boring and relativistic transparency are strongly restrained due to the generation of electron-positron pairs and -ray photons via quantum electrodynamics (QED) processes. A pair plasma with a density above the initial preplasma density is formed, counteracting the electron-free channel produced by the hole boring. This pair-dominated plasma can block the laser transport and trigger an avalanche-like QED cascade, efficiently transfering the laser energy to photons. This renders a 1--scalelength, underdense preplasma completely opaque to laser pulses at this power level. The QED-induced opacity therefore sets much higher contrast requirements for such pulse in solid-target experiments than expected by classical plasma physics. Our simulations show for example, that proton acceleration from the rear of a solid with a preplasma would be strongly impaired.
Cite
@article{arxiv.1701.05682,
title = {Laser opacity in underdense preplasma of solid targets due to quantum electrodynamics effects},
author = {W. -M. Wang and P. Gibbon and Z. -M. Sheng and Y. -T. Li and J. Zhang},
journal= {arXiv preprint arXiv:1701.05682},
year = {2017}
}
Comments
5 figures