| Literature DB >> 30848607 |
Georg Schmid1, Kirsten Schnorr1, Sven Augustin1, Severin Meister1, Hannes Lindenblatt1, Florian Trost1, Yifan Liu1, Nikola Stojanovic2, Alaa Al-Shemmary2, Torsten Golz2, Rolf Treusch2, Michael Gensch3, Matthias Kübel4,5, Lutz Foucar6, Artem Rudenko7, Joachim Ullrich8, Claus Dieter Schröter1, Thomas Pfeifer1, Robert Moshammer1.
Abstract
Time delays for atomic photoemission obtained in streaking or reconstruction of attosecond bursts by interference of two-photon transitions experiments originate from a combination of the quantum mechanical Wigner time and the Coulomb-laser coupling. While the former was investigated intensively theoretically as well as experimentally, the latter attracted less interest in experiments and has mostly been subject to calculations. Here, we present a measurement of the Coulomb-laser coupling-induced time shifts in photoionization of neon at 59.4 eV using a terahertz (THz) streaking field (λ=152 μm). Employing a reaction microscope at the THz beamline of the free-electron laser in Hamburg (FLASH), we have measured relative time shifts of up to 70 fs between the emission of 2p photoelectrons (∼38 eV) and low-energetic (<1 eV) photoelectrons. A comparison with theoretical predictions on Coulomb-laser coupling reveals reasonably good agreement.Entities:
Year: 2019 PMID: 30848607 DOI: 10.1103/PhysRevLett.122.073001
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161