Hierarchy of approximations for describing quantum light from high-harmonic generation: A Fermi-Hubbard model study
Christian Saugbjerg Lange, Lars Bojer Madsen

TL;DR
This paper develops a hierarchy of approximations for quantum light generated in high-harmonic generation, validated using the Fermi-Hubbard model, and identifies the Markov-state approximation as effective for typical experimental conditions.
Contribution
It introduces a systematic hierarchy of approximations for quantum optical equations of motion in high-harmonic generation, validated with the Fermi-Hubbard model, and highlights the effectiveness of the Markov-state approximation.
Findings
MSA captures the high-harmonic spectrum quantitatively.
MSA describes quantum properties like Mandel-Q parameter and squeezing qualitatively.
Hierarchy of approximations is validated using the correlated Fermi-Hubbard model.
Abstract
The quantum optical description of high-order harmonic generation where both the electrons of the generating medium and the driving and generated light fields are described quantum mechanically has been of significant interest in the past years. The quantum optical formulation leads to equations of motion for the generated light field in which the quantum optical field couples to the time-dependent current of the electronic medium irrespectively of the specifics of the electronic system being an atom, molecule, or solid. These equations of motion are not solvable for any realistic system and accurate and verified approximations are hence needed. In this work, we present a hierarchy of approximations for the equations of motion for the photonic state. At each level in this hierarchy, we compare it to the previous level justifying the validity using the Fermi-Hubbard model as an example…
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Taxonomy
TopicsLaser-Matter Interactions and Applications · Quantum Information and Cryptography · Quantum optics and atomic interactions
