DocumentCode
1094482
Title
Controlled wake field acceleration via laser pulse shaping
Author
Bulanov, Sergei V. ; Esirkepov, Timur J. ; Naumova, Natalia M. ; Pegoraro, Francesco ; Pogorelsky, Igor V. ; Pukhov, Alexander M.
Author_Institution
Gen. Phys. Inst., Acad. of Sci., Moscow, Russia
Volume
24
Issue
2
fYear
1996
fDate
4/1/1996 12:00:00 AM
Firstpage
393
Lastpage
399
Abstract
We consider the interaction of high-intensity laser pulses with underdense plasmas and address the problem of the excitation of strong and stable wake plasma waves with regular electric fields to provide effective acceleration of charged particles over appreciably long distances. It is known that a relativistically strong laser pulse longer than the wavelength of plasma waves, propagating in a plasma is subject to self-modulation. This may result in a nonstationary behavior of the produced plasma wake field/particle dephasing, and reduced net acceleration. In this paper we present the results of 1(2/2)-D and 2(1/2)-D particle in cell (PIC) simulations which demonstrate that regular wake electric fields may be obtained by a properly shaped laser pulse (sharp steepening of its leading front). These results are relevant to the design of the 100 MeV laser wake field electron acceleration experiment that uses a terawatt picosecond CO2 laser and is under construction at the Brookhaven Accelerator Test Facility
Keywords
beam handling techniques; collective accelerators; electron accelerators; high-speed optical techniques; plasma simulation; plasma-beam interactions; wakefield accelerators; 100 MeV; Brookhaven Accelerator Test Facility; CO2; charged particles; controlled wake field acceleration; electron acceleration experiment; high-intensity laser pulses interaction; laser pulse shaping; nonstationary behavior; particle dephasing; particle in cell simulations; reduced net acceleration; regular electric fields; relativistically strong laser pulse; self-modulation; stable wake plasma waves; strong wake plasma waves; terawatt picosecond laser; underdense plasmas; Acceleration; Life estimation; Optical control; Optical pulses; Plasma accelerators; Plasma simulation; Plasma stability; Plasma waves; Pulse shaping methods; Shape control;
fLanguage
English
Journal_Title
Plasma Science, IEEE Transactions on
Publisher
ieee
ISSN
0093-3813
Type
jour
DOI
10.1109/27.510003
Filename
510003
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