DocumentCode
777339
Title
Trapping and acceleration of nonideal injected electron bunches in laser Wakefield accelerators
Author
Hubbard, Richard F. ; Gordon, Daniel F. ; Cooley, James H. ; Hafizi, Bahman ; Jones, Theodore G. ; Kaganovich, Dmitri ; Sprangle, Phillip ; Ting, Antonio C. ; Zigler, Arie ; Dexter, Jason
Author_Institution
Plasma Phys. Div., Naval Res. Lab., Washington, DC, USA
Volume
33
Issue
2
fYear
2005
fDate
4/1/2005 12:00:00 AM
Firstpage
712
Lastpage
722
Abstract
Most conceptual designs for future laser wakefield accelerators (LWFA) require external injection of precisely-phased, monoenergetic, ultrashort bunches of MeV electrons. This paper reports simulation and Hamiltonian models of several nonideal injection schemes that demonstrate strong phase bunching and good accelerated beam quality in a channel-guided LWFA. For the case of monoenergetic, unphased (long bunch) injection, there is an optimum range of injection energies for which the LWFA can trap a significant fraction of the injected pulse while producing an ultrashort, high-quality accelerated pulse. These favorable results are due to a combination of pruning of particles at unfavorable phases, rapid acceleration, and strong phase bunching. Also, the plasma channel introduces a favorable shift in the region of accelerating phase where electrons are focused, which can significantly reduce the required injection energy. Simulation results agree well with the predictions of the Hamiltonian model. Simulations of phased injection with a broad injected energy spread also exhibit final accelerated bunches with small energy spread. These results suggest that relatively poor quality injection pulses may still be useful in LWFA demonstration experiments.
Keywords
electron accelerators; particle beam bunching; particle beam injection; particle traps; plasma accelerators; plasma filled waveguides; plasma light propagation; plasma simulation; wakefield accelerators; Hamiltonian model; broad injected energy spread; electron bunch acceleration; electron bunch trapping; laser wakefield accelerators; nonideal electron injection; particle pruning; phased injection simulations; plasma channel; Acceleration; Electron accelerators; Electron traps; Laser beams; Laser modes; Optical design; Particle beams; Plasma accelerators; Plasma simulation; Predictive models; Accelerators; laser applications; optical propagation in plasma media; pulsed lasers;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/TPS.2005.844615
Filename
1420611
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