Time-resolved mapping of correlated electron emission from helium atom in an intense laser pulse

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Abstract

We apply and analyze the concept of mapping ionization time on to the final momentum, distribution to the correlated electron dynamics in the nonsequential double ionization of helium, in a strong laser pulse (λ = 800 nm) and show how the mapping provides insight into the double ionization dynamics. To this end, we study, by means of numerical integration of the time-dependent Schrödinger equation of a fully correlated model atom, the temporal evolution of the center-of-mass momentum in a short laser pulse. Our results show that in the high intensity regime (I0 = 1.15 × 10 15 W cm-2), the mapping is in good agreement with a classical model including binary and recoil rescattering mechanisms. In the medium intensity regime (I0 = 5 × 1014 W cm -2), we identify additional contributions from the recollision-induced excitation of the ion followed by subsequent field ionization (RESI). © IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.

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APA

Ruiz, C., & Becker, A. (2008). Time-resolved mapping of correlated electron emission from helium atom in an intense laser pulse. New Journal of Physics, 10. https://doi.org/10.1088/1367-2630/10/2/025020

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