DocumentCode :
1091295
Title :
Collimated Ion Beam by a Laser-Illuminated Tailored Hole Target
Author :
Kawata, S. ; Nakamura, M. ; Sonobe, R. ; Miyazaki, S. ; Onuma, N. ; Nodera, Y. ; Kikuchi, T.
Author_Institution :
Utsunomiya Univ., Utsunomiya
Volume :
36
Issue :
2
fYear :
2008
fDate :
4/1/2008 12:00:00 AM
Firstpage :
363
Lastpage :
369
Abstract :
Divergence suppression of laser-produced proton beam is demonstrated by a tailored thin-foil target with hole. When an intense short-pulse laser illuminates the thin-foil target with the hole, transverse-edge effects of an accelerated electron cloud and an ion source cloud are eliminated by a protuberant part of the hole. The edge fields of the electron cloud and the ion source cloud induce the proton-beam divergence. Therefore, the transverse proton-beam divergence is suppressed by the tailored hole target. First, this paper presents the robustness of the hole target against a contaminated proton-source layer. It may be also difficult to make the laser axis coincide with the target-hole center line in realistic experiments and uses when the target has only one hole. The 2.5-D particle-in-cell simulations present that a multiple-hole target is robust against the laser-alignment and the target-setting errors. The multiple-hole target may serve as a robust target for practical uses to produce a collimated proton beam. In addition, a method for a proton-energy-spectrum control is also proposed by using a hole-cover layer. The hole-cover layer serves a role of high-energy proton selection.
Keywords :
ion optics; laser beam effects; metallic thin films; plasma simulation; proton beams; collimated ion beam; electron cloud edge field; hole cover layer; ion source cloud edge field; laser illuminated tailored holed target; laser produced proton beam; particle in cell simulations; proton beam divergence suppression; short pulse laser; tailored thin foil holed target; Acceleration; Charge carrier processes; Clouds; Collimators; Electrons; Ion beams; Ion sources; Particle beams; Protons; Robustness; Collimated ion beam; laser proton accelerators; laser–plasma interaction; laser–plasma interaction; tailored target;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2008.917948
Filename :
4463671
Link To Document :
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