Nonlinear Breit-Wheeler Process Driven by Intense Squeezed Light

Fuente: arXiv
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Main Authors: Ge, Xin, Zhuang, Kai-Hong, He, Pei-Lun, Chen, Yue-Yue
Format: Preprint
Published: 2026
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author Ge, Xin
Zhuang, Kai-Hong
He, Pei-Lun
Chen, Yue-Yue
author_facet Ge, Xin
Zhuang, Kai-Hong
He, Pei-Lun
Chen, Yue-Yue
contents The nonlinear Breit-Wheeler process is a fundamental phenomenon of strong-field quantum electrodynamics and is usually studied for classically prescribed laser backgrounds. Here we examine how the statistical properties of a squeezed coherent driving field modify nonlinear Breit-Wheeler pair production. Using a polarization-resolved Monte Carlo framework with stochastic averaging over the field-amplitude distribution derived from the Husimi Q-function, we simulate collisions of gamma photons with squeezed light and identify clear source-state-dependent modifications of the pair production signal. These effects include the smoothing of harmonic structure, the enhancement of higher-order multiphoton channels, and the suppression of the single-laser-photon absorption channel when stronger-field realizations raise the dressed-mass threshold. Within the selected spectral window, the degree of positron polarization increases monotonically with the squeezing parameter, while the angular distributions broaden as the statistical weight of larger field amplitudes increases. Our results show that, even at fixed mean electric-field amplitude, the statistical fluctuations inherent to the squeezed coherent state can substantially reshape spectral, angular, and spin-resolved observables in strong-field pair production. These findings illustrate a direct link between source-state-dependent field statistics and strong-field pair production observables, and provide a theoretical framework for studying how squeezed-state preparation of the driving field can influence high-energy QED processes.
format Preprint
id arxiv_https___arxiv_org_abs_2605_26706
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Nonlinear Breit-Wheeler Process Driven by Intense Squeezed Light
Ge, Xin
Zhuang, Kai-Hong
He, Pei-Lun
Chen, Yue-Yue
High Energy Physics - Theory
The nonlinear Breit-Wheeler process is a fundamental phenomenon of strong-field quantum electrodynamics and is usually studied for classically prescribed laser backgrounds. Here we examine how the statistical properties of a squeezed coherent driving field modify nonlinear Breit-Wheeler pair production. Using a polarization-resolved Monte Carlo framework with stochastic averaging over the field-amplitude distribution derived from the Husimi Q-function, we simulate collisions of gamma photons with squeezed light and identify clear source-state-dependent modifications of the pair production signal. These effects include the smoothing of harmonic structure, the enhancement of higher-order multiphoton channels, and the suppression of the single-laser-photon absorption channel when stronger-field realizations raise the dressed-mass threshold. Within the selected spectral window, the degree of positron polarization increases monotonically with the squeezing parameter, while the angular distributions broaden as the statistical weight of larger field amplitudes increases. Our results show that, even at fixed mean electric-field amplitude, the statistical fluctuations inherent to the squeezed coherent state can substantially reshape spectral, angular, and spin-resolved observables in strong-field pair production. These findings illustrate a direct link between source-state-dependent field statistics and strong-field pair production observables, and provide a theoretical framework for studying how squeezed-state preparation of the driving field can influence high-energy QED processes.
title Nonlinear Breit-Wheeler Process Driven by Intense Squeezed Light
topic High Energy Physics - Theory
url https://arxiv.org/abs/2605.26706