论文标题
液体中的Attsond动力学
Attosecond Dynamics in Liquids
论文作者
论文摘要
Attosond Science在原子上发达了,分子和固体已经获得了有希望的结果。在这里,我们回顾了开发液体中时间分解测量结果的第一步。这些进步为化学反应和生物过程的自然环境中电子动力学的时间域研究提供了访问。我们专注于代表Attosecond科学两个主要分支的两种技术:使用Attosond脉冲和高谐波光谱(HHS)的泵探针测量。在第一部分中,我们讨论了使用圆柱形微射流的attsondspolelectron光谱及其在液体和气态水之间测量时间延迟的应用。我们介绍了实验技术,新的数据分析方法和实验结果。我们详细描述了完全描述量子力学级别液体中的attsecond Chronoscopicy所需的概念和理论框架。这包括光电离延迟,散射延迟以及电子传输和(激光辅助)光发射和散射的连贯描述。结果,我们表明,液体的Attosent Chronoscopicy通常对两种类型的延迟以及电子均值路径敏感。通过详细的建模,涉及最先进的量子散射和蒙特卡罗轨迹方法,我们表明,光电离的延迟在20-30 eV的光子能量的液体水时占据了液体水的时间表。实验与理论之间的几乎量化的一致性支持了这一结论。在第二部分中,我们基于平坦的微夹引入液体HHS。这些结果代表了高谐波产生(HHG)的首次观察液体,该液体延伸到可见的极端脉络膜状态。
Attosecond science is well developed for atoms and promising results have been obtained for molecules and solids. Here, we review the first steps in developing attosecond time-resolved measurements in liquids. These advances provide access to time-domain studies of electronic dynamics in the natural environment of chemical reactions and biological processes. We concentrate on two techniques that are representative of the two main branches of attosecond science: pump-probe measurements using attosecond pulses and high-harmonic spectroscopy (HHS). In the first part, we discuss attosecond photoelectron spectroscopy with cylindrical microjets and its application to measure time delays between liquid and gaseous water. We present the experimental techniques, the new data-analysis methods and the experimental results. We describe in detail the conceptual and theoretical framework required to fully describe attosecond chronoscopy in liquids at a quantum-mechanical level. This includes photoionization delays, scattering delays, as well as a coherent description of electron transport and (laser-assisted) photoemission and scattering. As a consequence, we show that attosecond chronoscopy of liquids is, in general, sensitive to both types of delays, as well as the electron mean-free paths. Through detailed modeling, involving state-of-the-art quantum scattering and Monte-Carlo trajectory methods, we show that the photoionization delays dominate in attosecond chronoscopy of liquid water at photon energies of 20-30 eV. This conclusion is supported by a near-quantitative agreement between experiment and theory. In the second part, we introduce HHS of liquids based on flat microjets. These results represent the first observation of high-harmonic generation (HHG) in liquids extending well beyond the visible into the extreme-ultraviolet regime.