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Equivalence of RABBITT and Streaking Delays in Attosecond-Time-Resolved Photoemission Spectroscopy at Solid Surfaces

机译:在固体表面下的AttoSecond-Time-Descated PhotoEmission光谱中的Rabbitt和条纹延迟的等价性

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摘要

The dynamics of the photoelectric effect in solid-state systems can be investigated via attosecond-time-resolved photoelectron spectroscopy. This article provides a comparison of delay information accessible by the two most important techniques, attosecond streaking spectroscopy and reconstruction of attosecond beating by interference of two-photon transitions (RABBITT) at solid surfaces, respectively. The analysis is based on simulated time-resolved photoemission spectra obtained by solving the time-dependent Schrödinger equation in a single-active-electron approximation. We show a continuous transition from the few-cycle RABBITT regime to the streaking regime as two special cases of laser-assisted photoemission. The absolute delay times obtained by both methods agree with each other, within the uncertainty limits for kinetic energies >10 eV. Moreover, for kinetic energies >10 eV, both streaking delay time and RABBITT delay time coincide with the classical time of flight for an electron propagating from the emitter atom to the bulk-vacuum interface, with only small deviations of less than 4 as due to quantum mechanical interference effects.
机译:可以通过索引时间分辨的光电子能谱来研究固态系统中光电效应的动态。本文提供了两种最重要的技术可访问的延迟信息的比较,分别通过在固体表面处的双光子过渡(Rabbitt)的干扰分别对抗迭代跳动的延迟信息。该分析基于通过在单个有源电子近似下解决时间依赖的Schrödinger方程而获得的模拟时间分辨的光扫描光谱。我们展示了从几个循环的rabbitt制度到条纹制度的连续过渡,作为两个特殊的激光辅助照片的特殊情况。两种方法获得的绝对延迟时间相互一致,在动力学能量的不确定性范围内> 10eV。此外,对于动力学> 10eV,条纹延迟时间和兔子延迟时间都与从发射极原子传播到散装真空界面的电子的典型飞行时间,只有小于4的小偏差量子机械干扰效应。

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