Simulating vacuum birefringence with a diffractive beam propagation code

Fuente: arXiv
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Main Authors: Matheron, Aimé, Šmíd, Michal, Zepf, Matt, Karbstein, Felix
Format: Preprint
Published: 2025
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author Matheron, Aimé
Šmíd, Michal
Zepf, Matt
Karbstein, Felix
author_facet Matheron, Aimé
Šmíd, Michal
Zepf, Matt
Karbstein, Felix
contents Ninety years after their prediction, quantum vacuum nonlinearities in macroscopic electromagnetic fields still await a direct experimental verification in the laboratory. A particularly promising route towards their first measurement is the collision of counter-propagating laser beams in a pump-probe type experiment. Here, the key challenge is to separate the small quantum vacuum signal at the oscillation frequency of the probe that is mainly emitted in the vicinity of its forward cone from the large probe background. While quantitatively accurate predictions of the associated quantum vacuum signals are available, to date there is no framework that combines these predictions with a diffractive beam propagation code. Such codes are designed to holistically model optical experiments and can reliably account for diffraction and absorption losses of optical devices, like lenses and apertures. The latter inevitably influence and modify both the induced signal and background components prior to their detection in experiment. The present work addresses this topical issue and reports on the first implementation of a quantum vacuum signals emission module in an established diffractive beam propagation toolkit designed for the realistic modelling of optical experiments.
format Preprint
id arxiv_https___arxiv_org_abs_2512_17641
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Simulating vacuum birefringence with a diffractive beam propagation code
Matheron, Aimé
Šmíd, Michal
Zepf, Matt
Karbstein, Felix
Optics
High Energy Physics - Phenomenology
Ninety years after their prediction, quantum vacuum nonlinearities in macroscopic electromagnetic fields still await a direct experimental verification in the laboratory. A particularly promising route towards their first measurement is the collision of counter-propagating laser beams in a pump-probe type experiment. Here, the key challenge is to separate the small quantum vacuum signal at the oscillation frequency of the probe that is mainly emitted in the vicinity of its forward cone from the large probe background. While quantitatively accurate predictions of the associated quantum vacuum signals are available, to date there is no framework that combines these predictions with a diffractive beam propagation code. Such codes are designed to holistically model optical experiments and can reliably account for diffraction and absorption losses of optical devices, like lenses and apertures. The latter inevitably influence and modify both the induced signal and background components prior to their detection in experiment. The present work addresses this topical issue and reports on the first implementation of a quantum vacuum signals emission module in an established diffractive beam propagation toolkit designed for the realistic modelling of optical experiments.
title Simulating vacuum birefringence with a diffractive beam propagation code
topic Optics
High Energy Physics - Phenomenology
url https://arxiv.org/abs/2512.17641