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Simulation of Self-focusing of Femtosecond Laser Pulses with Normal Dispersion in Air Using the Diffraction-Beam Tube Approach

DOI:10.1134/s1024856019050075 期刊:Atmospheric and Oceanic Optics 出版年份:2019 更新时间:2025-09-12 10:27:22
摘要: Based on numerical simulation and qualitative analysis, the effect of the group velocity dispersion on the formation of light structures during self-focusing and filamentation of femtosecond Ti:sapphire laser pulses in air is studied. The main features of the filamentation have been determined at various pulse duration, initial beam radii, and peak radiation powers based on the results of numerical solutions of the nonlinear Schr?dinger equation in a Kerr-plasma dissipative dispersion medium and using the diffraction-beam tube approach. Dispersion is detected in the cases where the dispersion length is not a minimum at the scale of the process. It is shown that the relative (normalized to Rayleigh length) coordinate of the beginning of filamentation increases as the dispersion distortions of the pulse increase, and the filamentation channel length is reduced. For shorter laser pulses (tens of femtoseconds), the filamentation ceases as the laser beam radius increases. The size of the energy-replenishing diffraction-beam tube and the angular divergence of postfilamentation light channels increase for this class of pulses.
作者: Yu. E. Geints,A. A. Zemlyanov,O. V. Minina
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To study the effect of the group velocity dispersion on the formation of light structures during self-focusing and filamentation of femtosecond Ti:sapphire laser pulses in air.

The study demonstrates that the radius of the energy-replenishing diffraction-beam tube and the angular divergence of a postfilament channel increase as the pulse length decreases. The coordinate of the filamentation start normalized to the Rayleigh length increases with the initial beam radius for millimeter laser beams under the effect of normal dispersion. The modified dispersion length can be used to estimate the effect of normal dispersion on self-focusing and filamentation of femtosecond laser pulses in air.

The study focuses on the propagation of femtosecond laser pulses in air and does not consider other media or conditions. The effects of normal dispersion are analyzed, but other dispersion types or nonlinear effects are not explored.

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