DocumentCode :
1256280
Title :
Theory and simulation on the threshold of water breakdown induced by focused ultrashort laser pulses
Author :
Feng, Q. ; Moloney, J.V. ; Newell, A.C. ; Wright, E.M. ; Cook, K. ; Kennedy, P.K. ; Hammer, D.X. ; Rockwell, B.A. ; Thompson, C.R.
Author_Institution :
Center for Math. Sci., Arizona Univ., Tucson, AZ, USA
Volume :
33
Issue :
2
fYear :
1997
fDate :
2/1/1997 12:00:00 AM
Firstpage :
127
Lastpage :
137
Abstract :
A comprehensive model is developed for focused pulse propagation in water. The model incorporates self-focusing, group velocity dispersion, and laser-induced breakdown in which an electron plasma is generated via cascade and multiphoton ionization processes. The laser-induced breakdown is studied first without considering self-focusing to give a breakdown threshold of the light intensity, which compares favorably with existing experimental results. The simple study also yields the threshold dependence on pulse duration and input spot size, thus providing a framework to view the results of numerical simulations of the full model. The simulations establish the breakdown threshold in input power and reveal qualitatively different behavior for picoand femto-second pulses. For longer pulses, the cascade process provides the breakdown mechanism, while for shorter pulses the cooperation between the self-focusing and the multiphoton plasma generation dominates the breakdown threshold
Keywords :
eye; high-speed optical techniques; multiphoton processes; optical self-focusing; photoionisation; plasma production by laser; plasma simulation; breakdown mechanism; breakdown threshold; cascade process; comprehensive model; electron plasma; eye water propagation; femto-second pulses; focused pulse propagation; focused ultrashort laser pulses; full model; group velocity dispersion; input power; input spot size; laser-induced breakdown; light intensity; multiphoton ionization processes; numerical simulation; pico-second pulses; pulse duration; self-focusing; threshold dependence; water breakdown; Electric breakdown; Electrons; Ionization; Laser modes; Laser theory; Numerical simulation; Optical propagation; Plasma simulation; Pulse generation; Quantum cascade lasers;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.552252
Filename :
552252
Link To Document :
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