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单原子材料中极紫外飞秒脉冲的非线性自驱动光谱调谐

Non-linear self-driven spectral tuning of Extreme Ultraviolet Femtosecond Pulses in monoatomic materials.

作者信息

Ferrante Carino, Principi Emiliano, Marini Andrea, Batignani Giovanni, Fumero Giuseppe, Virga Alessandra, Foglia Laura, Mincigrucci Riccardo, Simoncig Alberto, Spezzani Carlo, Masciovecchio Claudio, Scopigno Tullio

机构信息

Graphene Labs, Istituto Italiano di Tecnologia, Via Morego 30, 16163, Genova, Italy.

Center for Life Nano Science @Sapienza, Istituto Italiano di Tecnologia, Viale Regina Elena 291, I-00161, Roma, Italy.

出版信息

Light Sci Appl. 2021 Apr 28;10(1):92. doi: 10.1038/s41377-021-00531-8.

Abstract

Self-action nonlinearity is a key aspect - either as a foundational element or a detrimental factor - of several optical spectroscopies and photonic devices. Supercontinuum generation, wavelength converters, and chirped pulse amplification are just a few examples. The recent advent of Free Electron Lasers (FEL) fostered building on nonlinearity to propose new concepts and extend optical wavelengths paradigms for extreme ultraviolet (EUV) and X-ray regimes. No evidence for intrapulse dynamics, however, has been reported at such short wavelengths, where the light-matter interactions are ruled by the sharp absorption edges of core electrons. Here, we provide experimental evidence for self-phase modulation of femtosecond FEL pulses, which we exploit for fine self-driven spectral tunability by interaction with sub-micrometric foils of selected monoatomic materials. Moving the pulse wavelength across the absorption edge, the spectral profile changes from a non-linear spectral blue-shift to a red-shifted broadening. These findings are rationalized accounting for ultrafast ionization and delayed thermal response of highly excited electrons above and below threshold, respectively.

摘要

自作用非线性是几种光谱学和光子器件的关键方面,无论是作为基础要素还是不利因素。超连续谱产生、波长转换器和啁啾脉冲放大只是其中几个例子。自由电子激光(FEL)的最新出现促使人们基于非线性提出新概念,并扩展极紫外(EUV)和X射线波段的光学波长范式。然而,在如此短的波长下,尚未有关于脉冲内动力学的报道,在这些波长下,光与物质的相互作用由核心电子的尖锐吸收边主导。在此,我们提供了飞秒FEL脉冲自相位调制的实验证据,我们利用与选定单原子材料的亚微米箔相互作用来实现精细的自驱动光谱可调谐性。使脉冲波长穿过吸收边,光谱轮廓从非线性光谱蓝移变为红移展宽。这些发现分别通过考虑高于和低于阈值的高激发电子的超快电离和延迟热响应而得到合理解释。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7f58/8080687/7ed21c682242/41377_2021_531_Fig1_HTML.jpg

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