Simulation of intense laser pulse propagation in capillary discharge plasma channels

Author(s):  
R.F. Hubbard ◽  
P. Sprangle ◽  
A. Ting ◽  
C. Moore ◽  
D. Kaganovich ◽  
...  
1999 ◽  
Author(s):  
R. F. Hubbard ◽  
Y. Ehrlich ◽  
D. Kaganovich ◽  
C. Cohen ◽  
C. I. Moore ◽  
...  

2018 ◽  
Vol 399 ◽  
pp. 66-84 ◽  
Author(s):  
S.A. Berman ◽  
C. Chandre ◽  
J. Dubois ◽  
F. Mauger ◽  
M. Perin ◽  
...  

2019 ◽  
Vol 52 (12) ◽  
pp. 125601 ◽  
Author(s):  
S A Berman ◽  
C Chandre ◽  
J Dubois ◽  
M Perin ◽  
T Uzer

2001 ◽  
Vol 6 (1) ◽  
pp. 21-26
Author(s):  
R. Danielius ◽  
D. Mikalauskas ◽  
A. Dubietis ◽  
A. Piskarskas

We report on observation of self-guiding of picosecond laser pulses in air that produces large-scale self-phase modulation. The converging picosecond laser beam produced a confined filament over 3 m of propagation with the whitelight spectrum.


2007 ◽  
Vol 21 (03n04) ◽  
pp. 361-371
Author(s):  
M. LEVIN ◽  
S. EISENMANN ◽  
T. PALCHAN ◽  
A. ZIGLER ◽  
K. SUGIYAMA ◽  
...  

Plasma channels have been widely used to guide intense laser pulses over many Rayleigh lengths. Using optimized segmented capillary discharges, we demonstrated guided propagation of ultra short (100 fs) high intensity (1016 W/cm-2, limited by the laser system) pulses over distances up to 12.6 cm and intensities above 1018W/cm2 for 1.5cm boron nitride capillary. Both radial and longitudinal density profiles of plasma channels were studied under various discharge conditions. A new diagnostic technique is presented in which the transport of a guided laser pulse at different delay times from the initiation of the discharge is sampled on a single discharge shot. Using external, 10 nsec Nd YAG laser of several tenths of milijoules to ignite polyethylene capillaries we have demonstrated channels of various length in density range of 1017 - 1019 cm -3 and up to 25% deep. The longitudinal profiles were found to be remarkably uniform in both short and long capillaries. The Boron Nitride capillary has provided a guiding medium that can withstand more than 1000 shots. Using these capillaries we have guided laser intensities above 1018W/cm2. The laser ignition of capillary discharge provided reliable almost jitter free approach. The concerns related to influence of relatively high current density flow through capillary on the injected electrons were studied extensively by us both theoretically and experimentally using a simple injection method. The method is based on the interaction of a high intensity laser pulse with a thin wire placed near capillary entrance. The influence of magnetic fields was found to be insignificant. Using this method we have studied transport of electrons though capillary discharge.


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