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首页> 外文期刊>Structural Dynamics >Probing ultra-fast processes with high dynamic range at 4th-generation light sources: Arrival time and intensity binning at unprecedented repetition rates
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Probing ultra-fast processes with high dynamic range at 4th-generation light sources: Arrival time and intensity binning at unprecedented repetition rates

机译:在第4代光源下探索具有高动态范围的超快速过程:以前所未有的重复率到达时间和强度合并

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Understanding dynamics on ultrafast timescales enables unique and new insights into important processes in the materials and life sciences. In this respect, the fundamental pump-probe approach based on ultra-short photon pulses aims at the creation of stroboscopic movies. Performing such experiments at one of the many recently established accelerator-based 4th-generation light sources such as free-electron lasers or superradiant THz sources allows an enormous widening of the accessible parameter space for the excitation and/or probing light pulses. Compared to table-top devices, critical issues of this type of experiment are fluctuations of the timing between the accelerator and external laser systems and intensity instabilities of the accelerator-based photon sources. Existing solutions have so far been only demonstrated at low repetition rates and/or achieved a limited dynamic range in comparison to table-top experiments, while the 4th generation of accelerator-based light sources is based on superconducting radio-frequency technology, which enables operation at MHz or even GHz repetition rates. In this article, we present the successful demonstration of ultra-fast accelerator-laser pump-probe experiments performed at an unprecedentedly high repetition rate in the few-hundred-kHz regime and with a currently achievable optimal time resolution of 13 fs (rms). Our scheme, based on the pulse-resolved detection of multiple beam parameters relevant for the experiment, allows us to achieve an excellent sensitivity in real-world ultra-fast experiments, as demonstrated for the example of THz-field-driven coherent spin precession.
机译:了解超快速度尺度上的动力学,可以对材料和生命科学的重要过程进行独特而新颖的洞察。在这方面,基于超短光子脉冲的基本泵浦探测方法旨在创建频闪电影。在许多最近建立的基于加速器的第四代光源(例如自由电子激光器或超辐射THz光源)之一上执行此类实验,可以极大地扩展用于激发和/或探测光脉冲的可访问参数空间。与台式设备相比,此类实验的关键问题是加速器和外部激光系统之间的时序波动以及基于加速器的光子源的强度不稳定性。迄今为止,与台式实验相比,现有解决方案仅以低重复率进行了演示和/或实现了有限的动态范围,而基于加速器的第四代光源是基于超导射频技术的,该技术可实现以MHz甚至GHz的重复频率。在本文中,我们成功展示了超快加速器-激光泵浦探针实验,该实验以几百kHz的频率以前所未有的高重复率进行,目前可实现的最佳时间分辨率为13 fs(rms)。我们的方案基于与实验相关的多个光束参数的脉冲分辨检测,使我们能够在现实世界的超快速实验中实现出色的灵敏度,如THz场驱动相干自旋旋进的示例所示。

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