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高斯脉冲光束分解在具有衍射光栅的光学系统建模中的应用。

Application of Gaussian pulsed beam decomposition in modeling optical systems with diffraction grating.

作者信息

Worku Norman G, Gross Herbert

出版信息

J Opt Soc Am A Opt Image Sci Vis. 2020 May 1;37(5):797-806. doi: 10.1364/JOSAA.390089.

Abstract

A diffraction grating is one of the most commonly used components in ultrafast optical systems such as pulse stretchers and compressors. Hence, modeling the temporal dispersion and spatiotemporal distortions associated with the angular dispersion of a diffraction grating is very crucial for wave optical modeling of such systems. In this paper, the Gaussian pulsed beam decomposition (GPBD) method is extended to handle the propagation of ultrashort pulses, with arbitrary spatial and spectral profiles, through complex ultrashort pulse shaping systems containing diffraction gratings. Although the diffraction efficiencies are not rigorously computed, the GPBD method enables modeling of the large angular dispersion of idealized diffraction gratings without running into an impractically large number of spectral samples as in the case of Fourier-transform-based methods. The application of the extended method is demonstrated by performing the wave optical propagation of an ultrashort pulse through a single diffraction grating and then through a Treacy compressor system. By combining the Treacy compressor with the Martinez grating pair stretcher with internal lenses, the pulse shaping through a complete chirped pulse amplification (CPA) setup is modeled. Finally, the effects of using real dispersive lenses in the Martinez stretcher on the output pulse of the CPA setup are presented. For analysis of the output pulses, methods of computing the spatiotemporal and spatio-spectral amplitudes of the output pulse from the phase correct superposition of individual Gaussian pulsed beams are presented.

摘要

衍射光栅是超快光学系统(如脉冲展宽器和压缩器)中最常用的元件之一。因此,对与衍射光栅角色散相关的时间色散和时空畸变进行建模,对于此类系统的波动光学建模至关重要。在本文中,高斯脉冲光束分解(GPBD)方法被扩展,以处理具有任意空间和光谱分布的超短脉冲通过包含衍射光栅的复杂超短脉冲整形系统的传播。尽管没有严格计算衍射效率,但GPBD方法能够对理想化衍射光栅的大角度色散进行建模,而不会像基于傅里叶变换的方法那样遇到大量光谱样本的不切实际情况。通过执行超短脉冲通过单个衍射光栅然后通过特雷西压缩器系统的波动光学传播,展示了扩展方法的应用。通过将特雷西压缩器与带有内部透镜的马丁内斯光栅对展宽器相结合,对通过完整啁啾脉冲放大(CPA)装置的脉冲整形进行了建模。最后,给出了在马丁内斯展宽器中使用实际色散透镜对CPA装置输出脉冲的影响。对于输出脉冲的分析,提出了从各个高斯脉冲光束的相位正确叠加计算输出脉冲的时空和空间光谱幅度的方法。

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