Weibel instability drives large magnetic field generation in laser-driven single plume ablation
Abstract
First-principles kinetic simulations are used to investigate magnetic field generation processes in expanding ablated plasmas relevant to laser-driven foils and hohlraums. In addition to Biermann-battery-generated magnetic fields, strong filamentary magnetic filaments are found to grow in the corona of single expanding plasma plumes; such filaments are observed to dominate Biermann fields at sufficiently large focal radius, reaching saturation values of 100 T at National Ignition Facility-like drive conditions. The filamentary fields result from the ion Weibel instability driven by relative counterstreaming between the ablated ions and a sparse background population, which could be the result of a gas prefill in a hohlraum or laser pre-pulse. The ion-Weibel instability is robust with the inclusion of collisions and grows on a timescale of 100 ps, with a wavelength on the scale of 100-250 m, over a wide range of background population densities; the instability also gives rise to coherent density oscillations. These results are of particular interest to inertial confinement fusion experiments, where such field and density perturbations can modify heat-transport as well as laser propagation and absorption.
Keywords
Cite
@article{arxiv.1912.11120,
title = {Weibel instability drives large magnetic field generation in laser-driven single plume ablation},
author = {Jackson Matteucci and Will Fox and Amitava Bhattacharjee and Derek B. Schaeffer and Kirill Lezhnin and Kai Germaschewski and Gennady Fiksel and Jill Peery and Suxing X. Hu},
journal= {arXiv preprint arXiv:1912.11120},
year = {2019}
}
Comments
5 pages, 4 figures