Semiclassical strong-field theory of phase delays in $\omega -2\omega$ above-threshold ionization
Diego G. Arb\'o, Sebasti\'an D. L\'opez, Joachim Burgd\"orfer

TL;DR
This paper develops a semiclassical strong-field theory to analyze phase delays in above-threshold ionization under an $\omega - 2\omega$ laser setup, incorporating non-perturbative effects and path interferences, with applications to atomic hydrogen.
Contribution
It introduces a semiclassical model that accurately describes phase delays in $\omega - 2\omega$ ionization, extending beyond perturbative approaches and including Coulomb effects.
Findings
Good agreement between semiclassical, SFA, and previous perturbative results.
Breakdown of RABBIT-like perturbative description at higher intensities.
Identification of multiple phase delays $\delta_i(E)$ in strong-field regime.
Abstract
Phase and time delays of atomic above-threshold ionization were recently experimentally explored in an setting [Zipp et al, Optica 1, 361 (2014)]. The phases of wavepackets ejected from argon by a strong pulse were probed as a function of the relative phase of a weaker probe pulse. Numerical simulations solving the time-dependent Schr\"{o}dinger equation (TDSE) displayed a sensitive dependence of the doubly differential momentum distribution on the relative phase between the and fields. Moreover, a surprisingly strong variation of the extracted phase delays on the intensity of the probe pulse was found. We present a semiclassical strong-field description of the phase delays in the emission of electrons in an setting and apply it to atomic hydrogen. Non-perturbative effects in both the pump and the…
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Taxonomy
TopicsLaser-Matter Interactions and Applications · Quantum optics and atomic interactions · Atomic and Molecular Physics
