Limitations of an approximative phase-space description in strong-field quantum optics
Rasmus Vesterager Gothelf, Lars Bojer Madsen, Christian Saugbjerg Lange

TL;DR
This paper critically examines the limitations of an approximate phase-space method in modeling quantum optical properties in strong-field processes like high-order harmonic generation, revealing it can mischaracterize quantum features such as squeezing and photon statistics.
Contribution
It introduces and evaluates the accuracy of an approximate phase-space description in strong-field quantum optics, highlighting its shortcomings in capturing quantum optical observables.
Findings
The approximation mischaracterizes the quantum optical properties of the driving laser.
It fails to predict sub-Poissonian photon statistics and quadrature squeezing.
The error scales with pulse duration and emitter density.
Abstract
In recent years, strong-field processes such as high-order harmonic generation (HHG) and above-threshold ionization driven by nonclassical states of light have become an increasingly popular field of study. The theoretical modeling of these processes often applies an approximate phase-space expansion of the nonclassical driving field in terms of coherent states, which has been shown to accurately predict the harmonic spectrum. However, its accuracy for the computation of quantum optical observables like the degree of squeezing and photon statistics has not been thoroughly considered. In this work, we introduce this approximative phase-space description and discuss its accuracy, and we find that it mischaracterizes the quantum optical properties of the driving laser by making it an incoherent mixture of classical states. We further show that this error in the driving field description…
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Taxonomy
TopicsLaser-Matter Interactions and Applications · Quantum optics and atomic interactions · Spectroscopy and Quantum Chemical Studies
