4.5 Article

Resolving and weighing the quantum orbits in strong-field tunneling ionization

期刊

ADVANCED PHOTONICS
卷 3, 期 3, 页码 -

出版社

SPIE-SOC PHOTO-OPTICAL INSTRUMENTATION ENGINEERS
DOI: 10.1117/1.AP.3.3.035001

关键词

tunneling ionization; quantum orbits; photoelectron holography; attosecond electron dynamics

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资金

  1. National Key Research and Development Program of China [2019YFA0308300]
  2. National Natural Science Foundation of China [11874163, 12021004, 11627809, 11934006]

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The relative contributions of quantum orbits during tunneling ionization induced by intense laser pulses are crucial for exploring the phenomenon and applications of tunneling. A combined experimental and theoretical study was conducted to identify these contributions, providing insights for interpreting and utilizing tunneling ionization in atoms and molecules.
Tunneling ionization of atoms and molecules induced by intense laser pulses contains the contributions of numerous quantum orbits. Identifying the contributions of these orbits is crucial for exploring the application of tunneling and for understanding various tunneling-triggered strong-field phenomena. We perform a combined experimental and theoretical study to identify the relative contributions of the quantum orbits corresponding to the electrons tunneling ionized during the adjacent rising and falling quarter cycles of the electric field of the laser pulse. In our scheme, a perturbative second-harmonic field is added to the fundamental driving field. By analyzing the relative phase dependence of the signal in the photoelectron momentum distribution, the relative contributions of these two orbits are unambiguously determined. Our results show that their relative contributions sensitively depend on the longitudinal momentum and modulate with the transverse momentum of the photoelectron, which is attributed to the interference of the electron wave packets of the long orbit. The relative contributions of these orbits resolved here are important for the application of strong-field tunneling ionization as a photoelectron spectroscopy for attosecond time-resolved measurements.

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