极端紫外线
光电效应
光离子化
超短脉冲
光电发射光谱学
激光器
电离
作者
Stefan Nagele,Renate Pazourek,Johannes Feist,Katharina Doblhoff-Dier,Christoph Lemell,Károly Tőkési,Joachim Burgdörfer
标识
DOI:10.1088/0953-4075/44/8/081001
摘要
Attosecond streaking of atomic photoemission holds the promise to provide unprecedented information on the release time of the photoelectron. We show that attosecond streaking phase shifts indeed contain timing (or spectral phase) information associated with the Eisenbud–Wigner–Smith time delay matrix of quantum scattering. However, this is only accessible if the influence of the streaking infrared (IR) field on the emission process is properly accounted for. The IR probe field can strongly modify the observed streaking phase shift. We show that the part of the phase shift ('time shift') due to the interaction between the outgoing electron and the combined Coulomb and IR laser fields can be described classically. By contrast, the strong initial-state dependence of the streaking phase shift is only revealed through the solution of the time-dependent Schrodinger equation in its full dimensionality. We find a time delay between the hydrogenic 2s and 2p initial states in He+ exceeding 20 as for a wide range of IR intensities and XUV energies.
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