论文标题

三维系统中Attosend干涉法的非局部机制

Nonlocal mechanisms of attosecond interferometry in three-dimensional systems

论文作者

Jelovina, Denis, Scrinzi, Armin, Wörner, Hans Jakob, Schild, Axel

论文摘要

Attosond干涉法(AI)是一种实验技术,基于在辅助激光器存在下使用Attosemend脉冲序列电离系统的实验技术。 该辅助激光器为光电波数据包提供了多个途径,以达到相同的最终状态,这些途径的干扰可用于探测物质的特性。 在气相中,AI的机制对于分离的原子和分子被众所周知,但在凝结相中并不多,尤其是在研究底物透明的情况下。 然后,由于来自相邻原子的散射,其他途径为电子开放。 我们研究这些额外的途径在多大程度上影响了一维模型系统的帮助,这些途径会影响测得的光电离延迟。 在这两种情况下,我们都发现总延迟可以表示为局部(光电离)延迟和非本地延迟的总和,该延迟包含运输过程中电子散射的影响。 1D系统表明,非本地延迟是发生电离和散射的位点之间距离的振荡功能。 在3D中获得了类似的结果,但是发现非本地延迟的调制深度在很大程度上取决于有效的散射横截面。 我们得出的结论是,低光子能量(20-30 eV)等无序系统(如液体)的ATTSOND干涉量主要对局部延迟敏感,即对电离实体的直接环境引起的光电离电动力学的变化,而对通过介质运输过程中的电子散射较少。

Attosecond interferometry (AI) is an experimental technique based on ionizing a system with an attosecond pulse train in the presence of an assisting laser. This assisting laser provides multiple pathways for the photoelectron wave packet to reach the same final state, and interference of these pathways can be used to probe properties of matter. The mechanism of AI is well-understood for isolated atoms and molecules in the gas phase, but not so much in the condensed phase, especially if the substrate under study is transparent. Then, additional pathways open up for the electron due to scattering from neighbouring atoms. We investigate to what extent these additional pathways influence the measured photoionization delay with the help of one- and three-dimensional model systems. In both cases, we find that the total delay can be expressed as the sum of a local (photoionization) delay and a non-local delay which contains the effect of electron scattering during transport. The 1D system shows that the non-local delay is an oscillatory function of the distance between the sites where ionization and scattering take place. A similar result is obtained in 3D, but the modulation depth of the non-local delay is found to strongly depend on the effective scattering cross section. We conclude that attosecond interferometry of disordered systems like liquids at low photon energies (20-30 eV) is mainly sensitive to the local delay, i.e., to changes of the photoionization dynamics induced by the immediate environment of the ionized entity, and less to electron scattering during transport through the medium.

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