DocumentCode
2890366
Title
Experimental investigation of self-guiding using a matched laser beam in a CM scale length underdense plasma
Author
Ralph, J.E. ; Fang, F. ; Pak, A.E. ; Marsh, K.A. ; Clayton, C.E. ; Joshi, C.
Author_Institution
Univ. of California at Los Angeles, Los Angeles
fYear
2007
fDate
25-29 June 2007
Firstpage
3052
Lastpage
3054
Abstract
High-intensity short-pulse laser guiding in plasma channels has extended the length over which acceleration occurs in laser wake field accelerators[1]. Recent multidimensional nonlinear plasma wave theory[2] predicts a range of optimal characteristics for self-guiding of laser pulses in the blowout regime for pulses shorter than a plasma wavelength. This theory predicts a robust, stable parameter space for self-guiding and wake production and has been verified through multidimensional particle-in-cell simulations. We experimentally explore the plasma dynamics and laser pulse propagation using a 50 fs multi-terawatt Ti:Sapphire laser in a helium plasma at plasma densities, laser powers, and spot sizes within this parameter space. Our parameters are in the range where the plasma is underdense and the laser power is much greater than the critical power for self focusing. The evolution of the laser pulse and plasma channel will be followed over several Rayleigh lengths.
Keywords
electron accelerators; helium; high-speed optical techniques; laser beams; particle beam dynamics; plasma accelerators; plasma density; plasma simulation; sapphire; self-focusing; titanium; wakefield accelerators; CM scale length; He; Rayleigh lengths; Ti:Al2O3; electron acceleration; helium plasma; laser powers; laser pulse propagation; laser wake field accelerators; multidimensional nonlinear plasma wave theory; multiterawatt laser; optimal characteristics; particle-in-cell simulations; plasma densities; plasma dynamics; self focusing; self-guiding; short-pulse laser; spot sizes; time 50 fs; Laser beams; Laser theory; Optical pulses; Particle beams; Plasma density; Plasma properties; Plasma simulation; Plasma stability; Plasma waves; Power lasers;
fLanguage
English
Publisher
ieee
Conference_Titel
Particle Accelerator Conference, 2007. PAC. IEEE
Conference_Location
Albuquerque, NM
Print_ISBN
978-1-4244-0916-7
Type
conf
DOI
10.1109/PAC.2007.4440665
Filename
4440665
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