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Propagation And Split Of The Filamentation Of Femtosecond Pulses In Air By Multi-Phase Screen Method

机译:飞秒脉冲在纤维中的传播和分裂的多相筛选方法

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摘要

The propagation and split of the filamentation of femtosecond pulses in air have been paid much attention since last a few years. However, most research works are performed with few considerations of the turbulence effects of atmosphere due to the difficulties of utilizing analytical solutions and experiment conditions. In this work, we will attempt to introduce a kind of numerical simulation method to analyze the transmission features of femtosecond laser pulses in air or in the turbulent air, namely, it is called multi-phase screen method (MPSM) which use phase screen to simulate atmospheric turbulence. In this presentation, the main laser parameters are as follows: 85 fs pulse-width, 0.8cm radius of the beam, the two kinds of 160GW and 1.0 TW peak-power operating at 800 nm. Then utilizing the structure of Vortex soliton to control the filamentation is proposed. In our cases, four Gaussian pulses with a difference of π/2 in the phase of each adjacent beam as a ring to control the filamentation by utilizing its characteristics of the vortex soliton. Some results show that the coupling and interaction among four Gaussian pulses cause the rotational transfer of the energy of the four beams. Finally, we obtain the transmission features of the beams propagating in the turbulent air with different intensities by the MPSM.
机译:自最近几年以来,飞秒脉冲的细丝在空气中的传播和分裂一直备受关注。然而,由于利用分析溶液和实验条件的困难,大多数研究工作很少考虑大气的湍流效应。在这项工作中,我们将尝试引入一种数值模拟方法来分析飞秒激光脉冲在空气中或在湍流空气中的传输特征,即被称为多相屏蔽法(MPSM)的一种使用相屏蔽的方法。模拟大气湍流。在此演示文稿中,主要的激光参数如下:85 fs脉冲宽度,0.8 cm的光束半径,两种160GW和1.0 TW峰值功率(工作在800 nm)。然后提出利用涡旋孤子的结构来控制细丝化。在我们的例子中,四个高斯脉冲在每个相邻光束的相位上具有π/ 2的差,作为一个环,通过利用旋涡孤子的特性控制细丝化。一些结果表明,四个高斯脉冲之间的耦合和相互作用引起了四个光束能量的旋转传递。最后,通过MPSM得到了在不同强度的湍流空气中传播的光束的传输特性。

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  • 会议地点 San Diego CA(US)
  • 作者单位

    Research Center of Space Laser Information Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, 201800, P.R.China;

    Research Center of Space Laser Information Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, 201800, P.R.China;

    Research Center of Space Laser Information Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, 201800, P.R.China;

    Research Center of Space Laser Information Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, 201800, P.R.China;

    Research Center of Space Laser Information Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, 201800, P.R.China;

    Research Center of Space Laser Information Technology, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, 201800, P.R.China;

    Key Laboratory of Electronics Engineering, College of Heilongjiang Province, Heilongjiang University, Harbin 150080, P. R.China;

    Key Laboratory of Electronics Engineering, College of Heilongjiang Province, Heilongjiang University, Harbin 150080, P. R.China;

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