Transition from SAMO to Rydberg State Ionization in C 60 in Femtosecond Laser Fields
The transition between two distinct ionization mechanisms in femtosecond laser fields at 785 nm is observed for C molecules. The transition occurs in the investigated intensity range from 3 to 20 TW/cm and is visualized in electron kinetic energy spectra below the one-photon energy (1.5 eV) obtained...
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Veröffentlicht in: | The journal of physical chemistry letters 2016-11, Vol.7 (22), p.4677-4682 |
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Hauptverfasser: | , , , , , , , , |
Format: | Artikel |
Sprache: | eng |
Online-Zugang: | Volltext |
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Zusammenfassung: | The transition between two distinct ionization mechanisms in femtosecond laser fields at 785 nm is observed for C
molecules. The transition occurs in the investigated intensity range from 3 to 20 TW/cm
and is visualized in electron kinetic energy spectra below the one-photon energy (1.5 eV) obtained via velocity map imaging. Assignment of several observed broad spectral peaks to ionization from superatom molecular orbitals (SAMOs) and Rydberg states is based on time-dependent density functional theory simulations. We find that ionization from SAMOs dominates the spectra for intensities below 5 TW/cm
. As the intensity increases, Rydberg state ionization exceeds the prominence of SAMOs. Using short laser pulses (20 fs) allowed uncovering of distinct six-lobe photoelectron angular distributions with kinetic energies just above the threshold (below 0.2 eV), which we interpret as over-the-barrier ionization of shallow f-Rydberg states in C
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ISSN: | 1948-7185 1948-7185 |
DOI: | 10.1021/acs.jpclett.6b02139 |