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Propagation of self-focusing laser pulses in atmosphere: experiment versus numerical simulation

机译:自聚焦激光脉冲在大气中的传播:实验与数值模拟

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Numerical simulations of self-focusing laser pulses obtained via a slowly evolving wave approach (modified nonlinear Schrodinger equation) are compared with published experimental results in fused silica as well as with experimental results in air and fused silica obtained in our laboratory. The mathematical model includes group-velocity dispersion and third-order dispersion, optical shock, and both instantaneous Kerr and delayed Raman nonlinearities as well as a perfectly matched layer absorbing boundary condition. Second-harmonic frequency-resolved optical gating data taken after 10.91 m of propagation allow a direct comparison between experimental and computational envelopes at a number of pulse energies. FWHM measurements of the spectral width, intensity autocorrelation duration, and pulse radius at distances of 4.35, 10.91, 17.47, and 22.73 m provide a view of model fidelity across both energy and propagation distance variables. The magnitude of the nonlinear refractive index, n(2), is inferred. (C) 2004 Optical Society of America.
机译:将通过缓慢发展的波方法(修正的非线性Schrodinger方程)获得的自聚焦激光脉冲的数值模拟与已发表的熔融石英实验结果以及在空气和熔融石英实验室获得的实验结果进行了比较。该数学模型包括群速度色散和三阶色散,光冲击,瞬时Kerr和延迟拉曼非线性以及完全匹配的层吸收边界条件。在传播10.91 m后获取的二次谐波频率分辨光学选通数据可以直接比较实验和计算包络在许多脉冲能量下的性能。在距离4.35、10.91、17.47和22.73 m处的光谱宽度,强度自相关持续时间和脉冲半径的FWHM测量提供了能量和传播距离变量的模型保真度视图。推断出非线性折射率的大小n(2)。 (C)2004年美国眼镜学会。

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