Chiral electron momentum distribution upon strong-field ionization of atoms

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Abstract

We present a scheme to synthesize a three-dimensional laser field that produces a chiral electron momentum distribution upon strong-field ionization of atoms. Our approach employs two orthogonally propagating two-color laser beams. This results in a time-dependent three-dimensional electric field vector of the combined light field that varies for different positions within the focal volume. For each position, we conduct a simulation of the corresponding electron momentum distribution that includes nonadiabatic dynamics and Coulomb interaction after tunneling. For suitable laser parameters, only a small region of the focal volume contributes to the final momentum distribution. Thus, integrating over all position coordinates, a specific chiral laser field dominates. This leads to a volume-averaged electron momentum distribution, which is chiral, as well. This work will serve as a benchmark for future strong-field experiments aiming at the synthetization of well-defined, three-dimensional laser fields.

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Geyer, A., Stindl, J., Dwojak, I., Hofmann, M., Anders, N., Roth, P., … Eckart, S. (2025). Chiral electron momentum distribution upon strong-field ionization of atoms. Physical Review Research, 7(3). https://doi.org/10.1103/8pnf-fmqt

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