DocumentCode
1094389
Title
Plasma guiding and wakefield generation for second-generation experiments
Author
Leemans, W.P. ; Siders, C.W. ; Esarey, E. ; Andreev, N.E. ; Shvets, G. ; Mori, Warren B.
Author_Institution
Center for Beam Phys., Lawrence Berkeley Lab., CA, USA
Volume
24
Issue
2
fYear
1996
fDate
4/1/1996 12:00:00 AM
Firstpage
331
Lastpage
342
Abstract
A design study has been carried out for a second-generation experiment on laser guiding and wakefield excitation in a channel. From simple scaling laws for the wakefield amplitude, dephasing length, the relativistic group velocity factor γg, and energy gain with and without guiding, we find that the parameter regime for a compact single stage GeV accelerator favors laser systems producing short pulses (10 fs⩽τ⩽100 fs), each containing an energy on the order of 100 mJ to a few J´s. Taking the dephasing length as the maximum acceleration distance, plasma channels with lengths of 1-10 cm and densities of 1017-1019 cm-3 need to be produced; whereas the design study has been primarily concerned with diffraction and channel guiding, dephasing and depletion limits, and linear wakefield theory, aspects of the effect of the plasma wave on the evolution of the laser pulse are discussed. We find that transverse and longitudinal pulse distortions could indeed affect the generated plasma wave phase velocity and amplitude, and hence may limit the achievable energy gains over the one-dimensional (1-D) linear estimates. Some issues for experiments on prototype small accelerators (100 MeV-1 GeV, cm scale) are also discussed
Keywords
beam handling techniques; collective accelerators; high-speed optical techniques; wakefield accelerators; 1 to 10 cm; 100 MeV to 1 GeV; 1D linear estimates; channel; compact single stage GeV accelerator; dephasing length; design study; energy gain with; laser guiding; longitudinal pulse distortions; plasma guiding; plasma wakefield generation; plasma wave; prototype small accelerators; relativistic group velocity factor; scaling laws; second-generation experiments; short pulses; transverse pulse distortion; wakefield amplitude; wakefield excitation; Acceleration; Diffraction; Laser excitation; Laser noise; Laser theory; Optical design; Optical pulses; Plasma accelerators; Plasma density; Plasma waves;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.509997
Filename
509997
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