Title :
Focusing of laser pulses using a plasma channel lens
Author :
Hubbard, R.F. ; Hafizi, B. ; Gordon, D.F. ; Jones, T.G. ; Kaganovich, D. ; Sprangle, P. ; Ting, A. ; Zigler, A.
Author_Institution :
Div. of Plasma Phys., Naval Res. Lab., Washington, DC, USA
Abstract :
Summary form only given. A short plasma channel will focus a laser pulse in a manner similar to a conventional solid lens. Such a plasma channel lens will be able to tolerate laser intensities far above the usual damage limits for conventional optics. This offers the possibility of manipulating intense laser pulses when the spot size is tens of microns and placing the focusing or defocusing optics much closer to the target or interaction region. The focusing properties of the plasma channel lens have been analyzed assuming a fundamental Gaussian laser pulse and a parabolic plasma density profile. Analytical models for the focal spot size r/sub f/ and focal length z/sub f/ in the limits of a thin and thick lens have been derived and compared with simulations using the LEM laser propagation code. The analytical models are derived from a general envelope equation for the laser spot size. The agreement between the analytical models and simulation results is generally quite good, particularly for the thick lens model. Several variations of the simple single tens configuration are examined using the simulation code. Multiple lenses may be placed in series to form an optical transport system, so that the requirements for transporting the beam are decoupled from the requirements of the interaction regime.
Keywords :
lenses; optical focusing; plasma density; plasma devices; plasma light propagation; plasma simulation; LEM laser propagation code; analytical models; capillary discharge guiding experiment; conventional optics; conventional solid lens; converging beam; converging pulse; defocusing optics; defocusing plasma lens; focal length; focal spot size; focusing; focusing optics; focusing plasma lens; focusing properties; fundamental Gaussian laser pulse; general envelope equation; intense laser pulses; interaction regime; interaction region; laser intensities; laser pulse; laser pulse focusing; laser pulses; laser spot size; multiple lenses; optical elements; optical transport system; overmoded lenses; overmoded regime; parabolic plasma density profile; plasma channel lens; pulse envelope; short plasma channel; simulation code; spot size; target; thick lens; thin lens; thin plasma channel lenses; Analytical models; Chirp modulation; Laser modes; Laser theory; Lenses; Nonlinear optics; Optical pulses; Optical pumping; Optical scattering; Plasma simulation;
Conference_Titel :
Plasma Science, 2002. ICOPS 2002. IEEE Conference Record - Abstracts. The 29th IEEE International Conference on
Conference_Location :
Banff, Alberta, Canada
Print_ISBN :
0-7803-7407-X
DOI :
10.1109/PLASMA.2002.1030275