Nondipole photoelectron momentum shifts in strong-field ionization with mid-infrared laser pulses of long duration
arXiv:2107.00355 · doi:10.1088/1361-6455/ac20e2
Abstract
We consider atomic strong-field ionization in the long-pulse limit for linearly polarized infrared laser fields. We show how nondipole effects in the plane formed by the propagation and polarization directions lead to (i) a shift of the origin of the rings describing the energetically allowed final electron momenta for individual above-threshold ionization channels and (ii) a redistribution in the continuum population on each ring.
6 pages, 4 figures
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Cited by in corpus (5)
- Nondipole effects in tunneling ionization by intense laser pulses
- Sub-cycle time-resolved nondipole dynamics in tunneling ionization
- Subcycle resolved strong-field tunneling ionization: Identification of magnetic dipole and electric quadrupole effects
- Propagation time and nondipole contributions to intraband high-harmonic generation
- Disappearance and reappearance of above-threshold-ionization peaks