High-Order Harmonic Generation with Beyond-Semiclassical Emitter Dynamics: A Strong-Field Quantum Optical Heisenberg Picture Approach
Christian Saugbjerg Lange, Ella Elisabeth Lassen, Rasmus Vesterager Gothelf, Lars Bojer Madsen

TL;DR
This paper develops a Heisenberg picture approach to high-order harmonic generation, capturing quantum fluctuations and nonclassical light features, offering a more accurate and scalable framework for analyzing strong-field quantum optical processes.
Contribution
It introduces a controlled perturbative Heisenberg picture method for HHG, including beyond-semiclassical corrections and scaling relations for large emitter ensembles.
Findings
Quantum fluctuations influence the emitted light's properties.
Squeezing increases with the number of emitters.
Emitter dynamics enhance light squeezing significantly.
Abstract
Quantum-optical descriptions of strong-field processes have attracted significant attention in recent years. Typically, the theoretical modeling has been conducted in the Schr\"odinger picture, where results are only obtainable under certain approximations, while, in contrast, the Heisenberg picture has remained relatively unexplored. In this work, we develop an accurately controlled perturbative expansion of the time-evolution operator in the Heisenberg picture and derive beyond-semiclassical corrections to the emitter dynamics due to the coupling to the quantized electromagnetic field, capturing effects of the quantum fluctuations present in the latter. We focus on high-order harmonic generation (HHG), where the approach is accurate in parameter regimes of current interest and it gives closed-form expressions for key observables. This formulation not only simplifies numerical…
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Taxonomy
TopicsStrong Light-Matter Interactions · Spectroscopy and Quantum Chemical Studies · Quantum optics and atomic interactions
