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    Nonadiabatic strong-field photoionization revisited: Detailed analysis

    Spencer Walker1,*, Abdulaziz Alqasem1,2, Harrison Pasquinilli1,†, Abraham Camacho Garibay1,‡, Cosmin I. Blaga3, Louis F. DiMauro1, and Alexandra S. Landsman1

    • *Contact author: walker.2190@osu.edu
    • †Present address: Department of Applied Physics, Stanford University, Stanford, California 94305, USA.
    • ‡Present address: Escuela Superior de Física y Matemáticas, Instituto Politécnico Nacional, Ciudad de México 07700, México.

    Phys. Rev. A 113, 033120 – Published 25 March, 2026

    DOI: https://doi.org/10.1103/1dp2-v9b4

    Abstract

    We develop a theoretical framework to interpret “bump-like” enhancements in the energy distribution of electrons emitted from cesium atoms subjected to intense infrared laser fields, as observed in a recent experiment. These emissions, detected at energies approaching twice the ponderomotive energy (2Up), indicate a mechanism where electrons are nonadiabatically ejected with substantial inward velocity following ionization. The bump-like features arise from returning trajectories that scatter off the residual ion. We interpret these experimental results classically using a periodically driven version of the Bohr model and quantum mechanically through Keldysh's adiabaticity parameter (γK) and Reiss's continuum-state intensity parameter Z in a Coulomb-corrected version of the strong-field approximation (SFA) that incorporates “complex” electronic trajectories. Notably, our theoretical analysis shows that these emissions are independent of the specific short-range form of the atomic potential.

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    See Also

    Nonadiabatic Strong-Field Photoionization Revisited

    Spencer Walker, Abdulaziz Alqasem, Abraham Camacho Garibay, Cosmin I. Blaga, Alexandra S. Landsman, and Louis F. DiMauro
    Phys. Rev. Lett. 136, 123203 (2026)

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