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New Method for Measuring Angle-Resolved Phases in Photoemission

机译:光曝光中测量角度分辨阶段的新方法

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Quantum mechanically, photoionization can be fully described by the complex photoionization amplitudes that describe the transition between the ground state and the continuum state. Knowledge of the value of the phase of these amplitudes has been a central interest in photoionization studies and newly developing attosecond science, since the phase can reveal important information about phenomena such as electron correlation. We present a new attosecond-precision interferometric method of angle-resolved measurement for the phase of the photoionization amplitudes, using two phase-locked extreme ultraviolet pulses of frequency ω and 2ω, from a free-electron laser. Phase differences Δη? between one- and twophoton ionization channels, averaged over multiple wave packets, are extracted for neon 2p electrons as a function of the emission angle at photoelectron energies 7.9, 10.2, and 16.6 eV. Δη? is nearly constant for emission parallel to the electric vector but increases at 10.2 eV for emission perpendicular to the electric vector. We model our observations with both perturbation and ab initio theory and find excellent agreement. In the existing method for attosecond measurement, reconstruction of attosecond beating by interference of two-photon transitions (RABBITT), a phase difference between two-photon pathways involving absorption and emission of an infrared photon is extracted. Our method can be used for extraction of a phase difference between single-photon and two-photon pathways and provides a new tool for attosecond science, which is complementary to RABBITT.
机译:量子机械地,光相消隐可以通过描述地面和连续状态之间的过渡的复杂光离移幅度完全描述。知识对这些幅度的阶段的价值是对光离心研究的核心兴趣和新开发的attosecond科学,因为该阶段可以揭示关于电子相关现象的重要信息。我们介绍了一种新的AttoSecond-Precision干涉式方法,用于从自由电子激光器的两个相位锁定的极端紫外线脉冲,使用两个相位锁定的极紫外线脉冲。相差Δη?在通过多波分组上平均的单位和卧式电离通道之间,例如光电子能量7.9,10.2和16.6eV的发射角的函数提取氖2P电子。 Δη?对于平行于电动载体的发射几乎是恒定的,但在10.2eV中增加,用于垂直于电载体的发射。我们通过扰动和AB Initio理论模拟了我们的观察,并找到了很好的协议。在用于索引测量的现有方法中,提取涉及吸收和发射红外光子的吸收和发射的双光子过渡(Rabbitt)的反秒搏动的重建。我们的方法可用于提取单光子和双光子途径之间的相位差,并为Attosecond Science提供新的工具,其与Rabbitt互补。
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