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在非线性光学中解耦频率、幅度和相位。

Decoupling Frequencies, Amplitudes and Phases in Nonlinear Optics.

机构信息

few-cycle Inc., 2890 Rue de Beaurivage, Montreal, H1L 5W5, Qc, Canada.

INRS-EMT, 1650 Blvd. Lionel Boulet, Varennes, J3X1S2, Qc, Canada.

出版信息

Sci Rep. 2017 Aug 11;7(1):7861. doi: 10.1038/s41598-017-07510-3.

Abstract

In linear optics, light fields do not mutually interact in a medium. However, they do mix when their field strength becomes comparable to electron binding energies in the so-called nonlinear optical regime. Such high fields are typically achieved with ultra-short laser pulses containing very broad frequency spectra where their amplitudes and phases are mutually coupled in a convolution process. Here, we describe a regime of nonlinear interactions without mixing of different frequencies. We demonstrate both in theory and experiment how frequency domain nonlinear optics overcomes the shortcomings arising from the convolution in conventional time domain interactions. We generate light fields with previously inaccessible properties by avoiding these uncontrolled couplings. Consequently, arbitrary phase functions are transferred linearly to other frequencies while preserving the general shape of the input spectrum. As a powerful application, we introduce deep UV phase control at 207 nm by using a conventional NIR pulse shaper.

摘要

在线性光学中,光场在介质中不会相互作用。然而,当光场强度达到所谓的非线性光学区域中电子结合能可比时,它们就会混合。这种高场通常通过包含非常宽频谱的超短激光脉冲来实现,其中它们的幅度和相位在卷积过程中相互耦合。在这里,我们描述了一种没有不同频率混合的非线性相互作用的状态。我们从理论和实验上证明了频率域非线性光学如何克服传统时域相互作用中卷积带来的缺点。通过避免这些不受控制的耦合,我们生成了以前无法获得的具有独特属性的光场。因此,任意相位函数可以线性地传递到其他频率,同时保持输入光谱的一般形状。作为一个强大的应用,我们通过使用常规的近红外脉冲整形器在 207nm 处引入深紫外相位控制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f0a4/5554166/13d40989b22f/41598_2017_7510_Fig1_HTML.jpg

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