Back to Search Start Over

Numerical investigation of spallation neutrons generated from petawatt-scale laser-driven proton beams

Authors :
Martinez, B.
Chen, S. N.
Bolaños, S.
Blanchot, N.
Boutoux, G.
Cayzac, W.
Courtois, C.
Davoine, X.
Duval, A.
Horny, V.
Lantuejoul, I.
Deroff, L. Le
Masson-Laborde, P. E.
Sary, G.
Vauzour, B.
Smets, R.
Gremillet, L.
Fuchs, J.
Publication Year :
2021

Abstract

Due to their high cost of acquisition and operation, there are still a limited number of high-yield, high-flux neutron source facilities worldwide. In this context, laser-driven neutron sources offer a promising, cheaper alternative to those based on large-scale accelerators, with, in addition, the potential of generating compact neutron beams of high brightness and ultra-short duration. In particular, the predicted capability of next-generation petawatt (PW)-class lasers to accelerate protons beyond the 100 MeV range should unlock efficient neutron generation through spallation reactions. In this paper, this scenario is investigated numerically through particle-in-cell and Monte Carlo simulations, modeling, respectively, the laser acceleration of protons from thin-foil targets and their subsequent conversion into neutrons in secondary heavy-ion targets. Laser parameters relevant to the 1 PW LMJ-PETAL and 1-10 PW Apollon systems are considered. Under such conditions, neutron fluxes exceeding $10^{23}\,\rm n\,cm^{-2}\,s^{-1}$ are predicted, opening up attractive fundamental and applicative prospects.<br />Comment: 16 pages, 13 figures

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2105.11094
Document Type :
Working Paper
Full Text :
https://doi.org/10.1063/5.0060582