论文标题

通过两个延迟的激光脉冲探索从分子二聚体发出的光电子角分布

Exploring photoelectron angular distributions emitted from molecular dimers by two delayed intense laser pulses

论文作者

Hanus, Václav, Kangaparambil, Sarayoo, Larimian, Seyedreza, Dorner-Kirchner, Martin, Xie, Xinhua, Baltuška, Andrius, Kitzler-Zeiler, Markus

论文摘要

我们描述了执行的实验和模拟的结果,目的是将光电光谱延伸到分子化合物的情况下以强烈的激光脉冲扩展。二聚体框架光电子角分布由n $ _2 $ -n $ _2 $和n $ _2 $ -o $ _2 $ _2 $ van der waals Dimers具有超舒尔特,强烈激光脉冲的双电离生成,使用四体重合成像与反应显微镜测量。为了研究第一次生成分子离子对剩余中性分子的电离行为的影响,我们采用了两个脉冲序列,该序列由线性极化和延迟椭圆极化激光脉冲组成,允许区分两个电离步骤。通过对获得的电子动量分布的分析,我们表明,与分离的分子相比,光电子在相邻分子电位上的散射导致光电子角分布的变形和旋转。基于此结果,我们证明了二聚体情况中的电子动量空间可以分开,从而从光电子角分布中提取有关电离途径的信息。当使用可变的脉冲延迟实施时,我们的工作开辟了使用具有强烈激光脉冲的角度分辨的光电谱法研究分子二聚体中光诱导的电子动力学的可能性。

We describe the results of experiments and simulations performed with the aim of extending photoelectron spectroscopy with intense laser pulses to the case of molecular compounds. Dimer frame photoelectron angular distributions generated by double ionization of N$_2$-N$_2$ and N$_2$-O$_2$ van der Waals dimers with ultrashort, intense laser pulses are measured using four-body coincidence imaging with a reaction microscope. To study the influence of the first-generated molecular ion on the ionization behavior of the remaining neutral molecule we employ a two-pulse sequence comprising of a linearly polarized and a delayed elliptically polarized laser pulse that allows distinguishing the two ionization steps. By analysis of the obtained electron momentum distributions we show that scattering of the photoelectron on the neighbouring molecular potential leads to a deformation and rotation of the photoelectron angular distribution as compared to that measured for an isolated molecule. Based on this result we demonstrate that the electron momentum space in the dimer case can be separated, allowing to extract information about the ionization pathway from the photoelectron angular distributions. Our work, when implemented with variable pulse delay, opens up the possibility of investigating light-induced electronic dynamics in molecular dimers using angularly resolved photoelectron spectroscopy with intense laser pulses.

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