DocumentCode :
1533328
Title :
Laser-induced plasma formation in water at nanosecond to femtosecond time scales: calculation of thresholds, absorption coefficients, and energy density
Author :
Noack, Joachim ; Vogel, Alfred
Author_Institution :
Med. Laser Center Lubeck, Germany
Volume :
35
Issue :
8
fYear :
1999
fDate :
8/1/1999 12:00:00 AM
Firstpage :
1156
Lastpage :
1167
Abstract :
The generation of plasmas in water by high-power laser pulses was investigated for pulse durations between 100 ns and 100 fs on the basis of a rate equation for the free electron density. The rate equation was numerically solved to calculate the evolution of the electron density during the laser pulse and to determine the absorption coefficient and energy density of the plasma. For nanosecond laser pulses, the generation of free electrons in distilled water is initiated by multiphoton ionization but then dominated by cascade ionization. For shorter laser pulses, multiphoton ionization gains ever more importance, and collision and recombination losses during breakdown diminish. The corresponding changes in the evolution of the free carrier density explain the reduction of the energy threshold for breakdown and of the plasma energy density observed with decreasing laser pulse duration. By solving the rate equation, we could also explain the complex pulse duration dependence of plasma transmission found in previous experiments. Good quantitative agreement was found between calculated and measured values for the breakdown threshold, plasma absorption coefficient, and plasma energy density
Keywords :
absorption coefficients; electron density; high-speed optical techniques; multiphoton processes; photoionisation; plasma density; plasma production by laser; plasma theory; water; H2O; absorption coefficient; absorption coefficients; breakdown threshold; cascade ionization; collision losses; complex pulse duration dependence; decreasing laser pulse duration; distilled water; electron density; energy density; energy threshold; femtosecond time scales; free electron density; free electrons; high-power laser pulses; laser pulse; laser-induced plasma formation; multiphoton ionization; multiphoton ionization gains; nanosecond laser pulses; nanosecond time scales; numerical solution; plasma absorption coefficient; plasma energy density; plasma generation; plasma transmission; pulse durations; quantitative agreement; rate equation; recombination losses; thresholds; water; Absorption; Electric breakdown; Equations; Free electron lasers; Ionization; Optical pulse generation; Optical pulses; Plasma density; Plasma measurements; Quantum cascade lasers;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.777215
Filename :
777215
Link To Document :
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