Scaling of laser-driven electron and proton acceleration as a function of laser pulse duration, energy, and intensity in the multi-picosecond regime
Author(s)
Simpson, R.A.; Scott, G.G.; Mariscal, D.; Rusby, D.; King, P.M.; Grace, E.; Aghedo, A.; Pagano, I.; Sinclair, M.; Armstrong, C.; Manuel, M. J.-E.; Haid, A.; Flippo, K.; Winslow, L.; Gatu Johnson, Maria; Frenje, Johan A.; Neely, D.; Kerr, S.; Williams, G.J.; Andrews, S.; Cauble, R.; Charron, K.; Costa, R.; Fischer, B.; Maricle, S.; Stuart, B.; Albert, F.; Lemos, N.; Mackinnon, A.; MacPhee, A.; Pak, A.; Ma, T.; ... Show more Show less
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Show full item recordAbstract
A scaling study of short-pulse laser-driven proton and electron acceleration was conducted as a function of pulse duration, laser energy, and laser intensity in the multi-picosecond (ps) regime (∼0.8 ps–20 ps). Maximum proton energies significantly greater than established scaling laws were observed, consistent with observations at other multi-ps laser facilities. In addition, maximum proton energies and electron temperatures in this regime were found to be strongly dependent on the laser pulse duration and preplasma conditions. A modified proton scaling model is presented that is able to better represent the accelerated proton characteristics in this multi-ps regime.
Description
Submitted for publication in Physics of Plasmas
Date issued
2021-07Department
Massachusetts Institute of Technology. Plasma Science and Fusion CenterJournal
Physics of Plasmas
Publisher
AIP
Other identifiers
21ja052