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  Quantum electrodynamics in high harmonic generation: multi-trajectory Ehrenfest and exact quantum analysis

de la Pena, S., Neufeld, O., Tzur, M. E., Cohen, O., Appel, H., & Rubio, A. (2024). Quantum electrodynamics in high harmonic generation: multi-trajectory Ehrenfest and exact quantum analysis.

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2409.13614.pdf (Preprint), 879KB
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2409.13614.pdf
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File downloaded from arXiv at 2024-09-23
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https://arxiv.org/abs/2409.13614 (Preprint)
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 Creators:
de la Pena, S.1, Author           
Neufeld, O.1, Author           
Tzur, M. E.2, Author
Cohen, O.2, Author
Appel, H.1, Author           
Rubio, A.1, 3, Author           
Affiliations:
1Theory Group, Theory Department, Max Planck Institute for the Structure and Dynamics of Matter, Max Planck Society, ou_2266715              
2Department of Physics and Solid State Institute, Technion–Israel Institute of Technology, ou_persistent22              
3Center for Computational Quantum Physics, The Flatiron Institute, ou_persistent22              

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Free keywords: Physics, Optics, physics.optics
 Abstract: High-harmonic generation (HHG) is a nonlinear process in which a material sample is irradiated by intense laser pulses, causing the emission of high harmonics of the incident light. HHG has historically been explained by theories employing a classical electromagnetic field, successfully capturing its spectral and temporal characteristics. However, recent research indicates that quantum-optical effects naturally exist, or can be artificially induced, in HHG. Even though the fundamental equations of motion for quantum electrodynamics (QED) are well-known, a unifying framework for solving them to explore HHG is missing. So far, numerical solutions employed a wide range of basis-sets and untested approximations. Based on methods originally developed for cavity polaritonics, here we formulate a numerically accurate QED model consisting of a single active electron and a single quantized photon mode. Our framework can in principle be extended to higher electronic dimensions and multiple photon modes to be employed in ab initio codes. We employ it as a model of an atom interacting with a photon mode and predict a characteristic minimum structure in the HHG yield vs. phase-squeezing. We find that this phenomenon, which can be used for novel ultrafast quantum spectroscopies, is partially captured by a multi-trajectory Ehrenfest dynamics approach, with the exact minima position sensitive to the level of theory. On the one hand, this motivates using multi-trajectory approaches as an alternative for costly exact calculations. On the other hand, it suggests an inherent limitation of the multi-trajectory formalism, indicating the presence of entanglement. Our work creates a road-map for a universal formalism of QED-HHG that can be employed for benchmarking approximate theories, predicting novel phenomena for advancing quantum applications, and for the measurements of entanglement and entropy.

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Language(s): eng - English
 Dates: 2024-09-20
 Publication Status: Published online
 Pages: 10
 Publishing info: -
 Table of Contents: -
 Rev. Type: No review
 Identifiers: arXiv: 2409.13614
 Degree: -

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