English

High-flux neutron generation by laser-accelerated ions from single- and double-layer targets

Plasma Physics 2022-10-19 v4

Abstract

Contemporary ultraintense, short-pulse laser systems provide extremely compact setups for the production of high-flux neutron beams, such as those required for nondestructive probing of dense matter, research on neutron-induced damage in fusion devices or laboratory astrophysics studies. Here, by coupling particle-in-cell and Monte Carlo numerical simulations, we examine possible strategies to optimise neutron sources from ion-induced nuclear reactions using 1-PW, 20-fs-class laser systems. To improve the ion acceleration, the laser-irradiated targets are chosen to be ultrathin solid foils, either standing alone or preceded by a plasma layer of near-critical density to enhance the laser focusing. We compare the performance of these single- and double-layer targets, and determine their optimum parameters in terms of energy and angular spectra of the accelerated ions. These are then sent into a converter to generate neutrons via nuclear reactions on beryllium and lead nuclei. Overall, we identify configurations that result in neutron yields as high as 1010nsr1\sim 10^{10}\,\rm n\,sr^{-1} in 1\sim 1-cm-thick converters or instantaneous neutron fluxes above 1023ncm2s110^{23}\,\rm n\,cm^{-2}\,s^{-1} at the backside of 100\lesssim 100-μ\mum-thick converters. Considering a realistic repetition rate of one laser shot per minute, the corresponding time-averaged neutron yields are predicted to reach values (107nsr1s1\gtrsim 10^7\,\rm n \,sr^{-1}\,s^{-1}) well above the current experimental record, and this even with a mere thin foil as a primary target. A further increase in the time-averaged yield up to above 108sr1s110^8\,\rm sr^{-1}\,s^{-1} is foreseen using double-layer targets.

Keywords

Cite

@article{arxiv.2202.06549,
  title  = {High-flux neutron generation by laser-accelerated ions from single- and double-layer targets},
  author = {Vojtěch Horný and Sophia N. Chen and Xavier Davoine and Vincent Lelasseux and Laurent Gremillet and Julien Fuchs},
  journal= {arXiv preprint arXiv:2202.06549},
  year   = {2022}
}

Comments

16 pages, 8 figures, 2 tables