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Trapped Ion Quantum Computing
Quantum Simulation
Quantum optical photoelectron interferometry
arXiv
Authors: Jonathan Dubois, Viviane Cotte, Richard Taïeb, Camille Lévêque, Jérémie Caillat, Pranshu Dave, Pascal Salières, David Bresteau, Charles Bourassin-Bouchet, Anne L'Huillier, David Busto
Year
2026
Paper ID
68732
Status
Preprint
Abstract Read
~2 min
Abstract Words
192
Citations
N/A
Abstract
We present a general theoretical framework for multiphoton processes driven by quantum light fields, establishing a direct link between photon statistics and photoelectron observables. Our results show that the autocorrelation and cross-correlation functions, which quantify the underlying photon statistics, are directly mapped onto the resulting photoelectron spectra. Although our framework is broadly applicable, we demonstrate specifically in the example of reconstruction of attosecond beating by interference of two-photon transitions (RABBIT) the influence of the light statistical properties. In this approach, the amplitude, contrast and phase of the oscillations of the sideband signal as a function of pump-probe delay reveal the quantum nature of light. We analyze these observables across several quantum configurations, including correlated infrared and harmonic modes, as well as the uncorrelated case with non-classical harmonic statistics, thereby establishing a general framework for quantum-light RABBIT spectroscopy. We compare the analytical theory with numerical simulations for the case of classical harmonics and an infrared field in a squeezed coherent state, obtaining excellent agreement. Our results reveal how the interplay between classical and quantum correlations dictates the coherence of the photoemission process, providing a new window into the quantum-optical foundations of attosecond science.
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- We present a general theoretical framework for multiphoton processes driven by quantum light fields, establishing a direct link between photon statistics and photoelectron...
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