Amplitude and phase characterization of 10-fs pulses generated by hollow-core fiber pulse compression

C. Durfee, S. Backus, H. Kapteyn, M. Murnane
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引用次数: 1

Abstract

For many nonlinear optics and high-field experiments, including high-order harmonic generation, X-ray lasers and particle acceleration, energetic pulses on the order of 10 fs and shorter would result in the observation of completely new phenomena. For example, calculations suggest that high-order harmonic generation with a 5 fs pulse would result in soft x-ray pulse with a duration on the order of 100 attoseconds. While 10 fs pulses are readily available at low energy (nJ) directly from Kerr-lens mode-locked laser oscillators, gain narrowing and high-order phase compensation have limited the pulse duration from ultra-short pulse laser amplifiers to about 20 fs. The route we are pursuing toward the goal of energetic sub-10 fs pulses is to compress amplified 20 fs pulses after self-phase modulation in a noble-gas-filled hollow-core dielectric waveguide, first used by Nisoli et al [1] for much longer input pulses. Along with the development of this technique, we have adapted the transient-grating frequency-resolved optical gating (TG-FROG) technique [2] for ultrashort, wide bandwidth pulse characterization. Since the guided pulse spectrum is broadened under the simultaneous action of several linear and nonlinear processes, including self-phase modulation, linear dispersion and self-steepening, the use of the FROG technique provides information necessary for optimal compression. Perhaps more important is that such coherent detection dramatically broadens the scope of experiments and applications using these pulses. For example, full characterization of amplitude and phase is crucial for control of the complex field profile.
空芯光纤脉冲压缩产生的10fs脉冲的振幅和相位特性
对于许多非线性光学和高场实验,包括高次谐波产生、x射线激光和粒子加速,10 fs或更短的能量脉冲将导致观察到全新的现象。例如,计算表明,以5fs脉冲产生高次谐波将产生持续时间约为100阿秒的软x射线脉冲。虽然从克尔透镜锁模激光振荡器中可以直接获得低能量(nJ)的10fs脉冲,但增益缩小和高阶相位补偿将超短脉冲激光放大器的脉冲持续时间限制在20fs左右。为了实现能量低于10fs的脉冲目标,我们所追求的路径是在充满惰性气体的空心介质波导中进行自相位调制后压缩放大的20fs脉冲,Nisoli等人[1]首先使用该方法来实现更长的输入脉冲。随着这项技术的发展,我们已经采用瞬态光栅频率分辨光门控(TG-FROG)技术[2]进行超短、宽带脉冲表征。由于引导脉冲频谱在几个线性和非线性过程(包括自相位调制、线性色散和自陡化)的同时作用下被拓宽,因此FROG技术的使用为优化压缩提供了必要的信息。也许更重要的是,这种相干探测极大地拓宽了使用这些脉冲的实验和应用范围。例如,振幅和相位的全面表征对于复杂场剖面的控制至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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