Quantum engineering of high harmonic generation

Fuente: arXiv
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Bibliographic Details
Main Authors: Boroumand, Neda, Thorpe, Adam, Bart, Graeme, Wang, Lu, Purschke, David N., Vampa, Giulio, Brabec, Thomas
Format: Preprint
Published: 2025
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author Boroumand, Neda
Thorpe, Adam
Bart, Graeme
Wang, Lu
Purschke, David N.
Vampa, Giulio
Brabec, Thomas
author_facet Boroumand, Neda
Thorpe, Adam
Bart, Graeme
Wang, Lu
Purschke, David N.
Vampa, Giulio
Brabec, Thomas
contents In quantum sideband high harmonic generation (QSHHG), high harmonic generation is perturbed by a bright quantum field resulting in harmonic sidebands, with the intent to transfer non-classical properties from the quantum perturbation to the harmonic sidebands. So far, non-classical features have not been found in QSHHG yet. The closed form theory of QSHHG in atoms and solids developed here answers the question under which conditions non-classical features can be realized. QSHHG results in a multi-mode entanglement between harmonic sideband modes and perturbative quantum mode. A projective measurement on either creates a variety of non-classical states commonly used in quantum information science. This opens a pathway towards quantum engineering high harmonic generation as a short wavelength source for quantum information science.
format Preprint
id arxiv_https___arxiv_org_abs_2505_22536
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum engineering of high harmonic generation
Boroumand, Neda
Thorpe, Adam
Bart, Graeme
Wang, Lu
Purschke, David N.
Vampa, Giulio
Brabec, Thomas
Quantum Physics
In quantum sideband high harmonic generation (QSHHG), high harmonic generation is perturbed by a bright quantum field resulting in harmonic sidebands, with the intent to transfer non-classical properties from the quantum perturbation to the harmonic sidebands. So far, non-classical features have not been found in QSHHG yet. The closed form theory of QSHHG in atoms and solids developed here answers the question under which conditions non-classical features can be realized. QSHHG results in a multi-mode entanglement between harmonic sideband modes and perturbative quantum mode. A projective measurement on either creates a variety of non-classical states commonly used in quantum information science. This opens a pathway towards quantum engineering high harmonic generation as a short wavelength source for quantum information science.
title Quantum engineering of high harmonic generation
topic Quantum Physics
url https://arxiv.org/abs/2505.22536