English

A new method for measuring angle-resolved phases in photoemission

Atomic Physics 2020-10-07 v4

Abstract

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\omega and 2ω2\omega, from a Free-Electron Laser. Phase differences Δη~\Delta \tilde \eta between one- and two-photon ionization channels, averaged over multiple wave packets, are extracted for neon 2p2p electrons as a function of emission angle at photoelectron energies 7.9, 10.2, and 16.6 eV. Δη~\Delta \tilde \eta 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 \textit{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.

Keywords

Cite

@article{arxiv.1907.13605,
  title  = {A new method for measuring angle-resolved phases in photoemission},
  author = {Daehyun You and Kiyoshi Ueda and Elena V. Gryzlova and Alexei N. Grum-Grzhimailo and Maria M. Popova and Ekaterina I. Staroselskaya and Oyunbileg Tugs and Yuki Orimo and Takeshi Sato and Kenichi L. Ishikawa and Paolo Antonio Carpeggiani and Tamás Csizmadia and Miklós Füle and Giuseppe Sansone and Praveen Kumar Maroju and Alessandro D'Elia and Tommaso Mazza and Michael Meyer and Carlo Callegari and Michele Di Fraia and Oksana Plekan and Robert Richter and Luca Giannessi and Enrico Allaria and Giovanni De Ninno and Mauro Trovò and Laura Badano and Bruno Diviacco and Giulio Gaio and David Gauthier and Najmeh Mirian and Giuseppe Penco and Primož Rebernik Ribič and Simone Spampinati and Carlo Spezzani and Kevin C. Prince},
  journal= {arXiv preprint arXiv:1907.13605},
  year   = {2020}
}
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