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arXiv · 1410.5629

Formation of very low energy states crossing the ionization threshold of argon atoms in strong mid-infrared fields

Abstract

Atomic ionization by intense mid-infrared (mid-IR) pulses produces low electron energy features that the strong-field approximation, which is expected to be valid in the tunneling ionization regime characterized by small Keldysh parameters ($γ\ll 1$), cannot describe. These features include the low-energy structure (LES), the very-low-energy structure (VLES), and the more recently found zero-energy structure (ZES). They result from the interplay between the laser electric field and the atomic Coulomb field which controls the low-energy spectrum also for small $γ$. In the present joint experimental and theoretical study we investigate the vectorial momentum spectrum at very low energies. Using a reaction microscope optimized for the detection of very low energy electrons, we have performed a thorough study of the three-dimensional momentum spectrum well below 1 eV. Our measurements are complemented by quantum and classical simulations, which allow for an interpretation of the LES, VLES and of the newly identified ZES in terms of two-dimensional Coulomb focusing and recapture into Rydberg states, respectively.

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Benjamin Wolter, Christoph Lemell, Matthias Baudisch, Michael G. Pullen, Xiao-Min Tong, Michaël Hemmer, Arne Senftleben, Claus Dieter Schröter, Joachim Ullrich, Robert Moshammer, Jens Biegert, Joachim Burgdörfer. 2014-10-21. Formation of very low energy states crossing the ionization threshold of argon atoms in strong mid-infrared fields. https://doi.org/10.1103/physreva.90.063424

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