Tunable quantum light by modulated free electrons

Fuente: arXiv
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Main Authors: Di Giulio, Valerio, Haindl, Rudolf, Ropers, Claus
Format: Preprint
Published: 2025
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author Di Giulio, Valerio
Haindl, Rudolf
Ropers, Claus
author_facet Di Giulio, Valerio
Haindl, Rudolf
Ropers, Claus
contents Nonclassical states of light are fundamental in various applications, spanning quantum computation to enhanced sensing. Fast free electrons, which emit light into photonic structures through the mechanism of spontaneous emission, represent a promising platform for generating diverse types of states. Indeed, the intrinsic connection between the input electron wave function and the output light field suggests that electron-shaping schemes, based on light-induced scattering, facilitates their synthesis. In this article, we present a theoretical framework capable of predicting the final optical density matrix of a generic N-electron state that can also account for post-sample energy filtering. By using such framework, we study the modulation-dependent fluctuations of the N-electron emission and identify regions of Poissonian and super-Poissonian statistics. In the single-electron case, we show how coherent states with nearly 90% purity can be formed by pre-filtering a portion of the spectrum after modulation, and how non-Gaussian states are generated after a precise energy measurement. Furthermore, we present a strategy combining a single-stage electron modulation and post-filtering to harness tailored light states, such as squeezed vacuum, cat, and triangular cat states, with fidelity close to 100%.
format Preprint
id arxiv_https___arxiv_org_abs_2501_16771
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tunable quantum light by modulated free electrons
Di Giulio, Valerio
Haindl, Rudolf
Ropers, Claus
Quantum Physics
Other Condensed Matter
Optics
Nonclassical states of light are fundamental in various applications, spanning quantum computation to enhanced sensing. Fast free electrons, which emit light into photonic structures through the mechanism of spontaneous emission, represent a promising platform for generating diverse types of states. Indeed, the intrinsic connection between the input electron wave function and the output light field suggests that electron-shaping schemes, based on light-induced scattering, facilitates their synthesis. In this article, we present a theoretical framework capable of predicting the final optical density matrix of a generic N-electron state that can also account for post-sample energy filtering. By using such framework, we study the modulation-dependent fluctuations of the N-electron emission and identify regions of Poissonian and super-Poissonian statistics. In the single-electron case, we show how coherent states with nearly 90% purity can be formed by pre-filtering a portion of the spectrum after modulation, and how non-Gaussian states are generated after a precise energy measurement. Furthermore, we present a strategy combining a single-stage electron modulation and post-filtering to harness tailored light states, such as squeezed vacuum, cat, and triangular cat states, with fidelity close to 100%.
title Tunable quantum light by modulated free electrons
topic Quantum Physics
Other Condensed Matter
Optics
url https://arxiv.org/abs/2501.16771