DocumentCode :
1194142
Title :
Efficient Production of Proton Beam in Laser-Illuminated Tailored Microstructured Target
Author :
Kawata, Shigeo ; Nodera, Yoshifumi ; Limpouch, Jiri ; Klimo, Ondrej
Author_Institution :
Grad. Sch. of Eng., Utsunomiya Univ., Utsunomiya
Volume :
37
Issue :
4
fYear :
2009
fDate :
4/1/2009 12:00:00 AM
Firstpage :
481
Lastpage :
486
Abstract :
In a proton beam generation by a laser-foil interaction, significant improvement of energy-conversion efficiency from laser to proton beam is presented by particle simulations. When an intense short-pulse laser illuminates the thin-foil target, the foil electrons are accelerated around the target by the ponderomotive force. The hot electrons generate a strong electric field, which accelerates the foil protons, and the proton beam is generated. In this paper, a tailored multihole thin-foil target is proposed in order to increase the energy-conversion efficiency from laser to protons. The multiholes transpiercing the foil target enhance the laser-proton energy-conversion efficiency significantly. Particle-in-cell 2.5-dimensional simulations present that the total laser-proton energy-conversion efficiency becomes 9.3% for the tailored multihole target, although the energy-conversion efficiency is 1.5% for a plain thin-foil target. The maximum proton energy is 10.0 MeV for the multihole target and is 3.14 MeV for the plain target. The transpiercing multihole target serves a new method to increase the energy-conversion efficiency from laser to ions.
Keywords :
foils; plasma light propagation; plasma nonlinear processes; plasma simulation; plasma-beam interactions; proton beams; electron volt energy 10 MeV; electron volt energy 3.14 MeV; energy-conversion efficiency; hot electrons; intense short-pulse laser; laser-foil interaction; laser-illuminated tailored microstructured target; multihole thin-foil target; particle-in-cell 2.5-dimensional simulations; ponderomotive force; proton beam generation; Efficient ion beam generation; laser absorption; laser ion acceleration; microstructured target;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2008.2011272
Filename :
4801631
Link To Document :
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