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Microscopic analysis of above-threshold ionization driven by squeezed light

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arxiv 2508.01621 v2 pith:VNVHKRQE submitted 2025-08-03 quant-ph

Microscopic analysis of above-threshold ionization driven by squeezed light

classification quant-ph
keywords ionizationlightfeaturessqueezedabove-thresholdbackactionclassicaldriven
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Above-threshold ionization (ATI) is a strong-field-driven process where electrons absorb more photons than required for ionization. While ATI dynamics and outputs are well-understood when driven by classical, perfectly coherent light, the recent development of non-classical light sources for strong-field phenomena has spurred interest in their effect on the involved electron dynamics. In this work, we present a microscopic quantum optical theory describing ATI under the influence of strong squeezed light. We observe that squeezed light significantly enhances the coupling between light and matter, making their mutual backaction more important than under classical driving. This backaction profoundly impacts the electronic ionization times, as well as the non-classical properties of the joint electron-light state. This results in pronounced entanglement features, both immediately after ionization, and at later times. These entanglement features are reflected in the properties of the quantum optical state of the driving field revealing notable non-Gaussian features that depend on both, the amount of squeezing, and the number of ionization events occurring during the interaction.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Limitations of an approximative phase-space description in strong-field quantum optics

    quant-ph 2026-02 conditional novelty 5.0

    Under no dipole correlations, the APP approximation of a nonclassical driving field is an incoherent mixture of coherent states, so it cannot produce sub-Poissonian statistics or squeezing in HHG light.