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Design and implementation of an optimal laser pulse front tilting scheme for ultrafast electron diffraction in reflection geometry with high temporal resolution

机译:具有高时间分辨率的反射几何中超快电子衍射的最佳激光脉冲前倾斜方案的设计与实现

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摘要

Ultrafast electron diffraction is a powerful technique to investigate out-of-equilibrium atomic dynamics in solids with high temporal resolution. When diffraction is performed in reflection geometry, the main limitation is the mismatch in group velocity between the overlapping pump light and the electron probe pulses, which affects the overall temporal resolution of the experiment. A solution already available in the literature involved pulse front tilt of the pump beam at the sample, providing a sub-picosecond time resolution. However, in the reported optical scheme, the tilted pulse is characterized by a temporal chirp of about 1 ps at 1 mm away from the centre of the beam, which limits the investigation of surface dynamics in large crystals. In this paper, we propose an optimal tilting scheme designed for a radio-frequency-compressed ultrafast electron diffraction setup working in reflection geometry with 30 keV electron pulses containing up to 105 electrons/pulse. To characterize our scheme, we performed optical cross-correlation measurements, obtaining an average temporal width of the tilted pulse lower than 250 fs. The calibration of the electron-laser temporal overlap was obtained by monitoring the spatial profile of the electron beam when interacting with the plasma optically induced at the apex of a copper needle (plasma lensing effect). Finally, we report the first time-resolved results obtained on graphite, where the electron-phonon coupling dynamics is observed, showing an overall temporal resolution in the sub-500 fs regime. The successful implementation of this configuration opens the way to directly probe structural dynamics of low-dimensional systems in the sub-picosecond regime, with pulsed electrons.
机译:超快电子衍射是研究具有高时间分辨率的固体中不平衡原子动力学的有力技术。当以反射几何形状进行衍射时,主要限制是重叠泵浦光和电子探针脉冲之间的群速度不匹配,这会影响实验的整体时间分辨率。文献中已经存在的解决方案涉及样品处泵浦光束的脉冲前倾斜,提供亚皮秒级的时间分辨率。然而,在所报道的光学方案中,倾斜脉冲的特征是距光束中心1 mm处约1 ps的时间chi,这限制了大晶体表面动力学的研究。在本文中,我们为射频压缩超快电子衍射装置设计了一种最佳倾斜方案,该装置可在反射几何结构中工作,其中30 keV电子脉冲包含多达10 5 个电子/脉冲。为了表征我们的方案,我们执行了光学互相关测量,获得了低于250 fs的倾斜脉冲的平均时间宽度。通过监视电子束与铜针顶端光学感应的等离子体相互作用时的电子束空间分布(等离子透镜效应),可以对电子-激光时间重叠进行校准。最后,我们报告了在石墨上获得的第一个时间分辨结果,其中观察到了电子-声子耦合动力学,显示了低于500 fs的整体时间分辨率。这种配置的成功实施为直接在亚皮秒范围内利用脉冲电子探测低维系统的结构动力学开辟了道路。

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