Exploiting light coherence in astrophysics

Fuente: arXiv
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Hauptverfasser: Sliusar, Vitalii, Della Volpe, Domenico, Garcia, Benjamin, Koziol, Gilles, Lyard, Etienne, Produit, Nicolas, Raiola, Aramis, Saha, Prasenjit, Stanic, Lucijana, Walter, Roland
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Veröffentlicht: 2025
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author Sliusar, Vitalii
Della Volpe, Domenico
Garcia, Benjamin
Koziol, Gilles
Lyard, Etienne
Produit, Nicolas
Raiola, Aramis
Saha, Prasenjit
Stanic, Lucijana
Walter, Roland
author_facet Sliusar, Vitalii
Della Volpe, Domenico
Garcia, Benjamin
Koziol, Gilles
Lyard, Etienne
Produit, Nicolas
Raiola, Aramis
Saha, Prasenjit
Stanic, Lucijana
Walter, Roland
contents The Hanbury Brown-Twiss (HBT) effect, discovered in the 1950s and further developed in the 1960s, was originally used to estimate stellar angular diameters through intensity correlations measured by spatially separated detectors. Further developments started from HBT experiments to exploit quantum bunching of photons in incoherent light sources played foundational role in the development of quantum optics. When the two detectors in an HBT experiment are co-located, typically implemented using a beam splitter, a zero-baseline intensity correlation is obtained, which after deconvolution of the detector response function, yields the temporal component of the second-order coherence function. Unlike spatial correlations, this function is independent of the source brightness distribution, or its size, giving direct insight into the properties of the source's emission process itself - photon statistics. Along with photometric and spectral information, the second order coherence function can be used to constrain the emission mechanisms and discriminate between thermal, synchrotron, bremsstrahlung and stimulated emission processes. Evolution of the emission processes would likewise drive changes in the second order coherence. Light coherence information along with multi-wavelength observations, can become a complementary "messenger", carrying internal information about the astronomical source.
format Preprint
id arxiv_https___arxiv_org_abs_2512_12470
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Exploiting light coherence in astrophysics
Sliusar, Vitalii
Della Volpe, Domenico
Garcia, Benjamin
Koziol, Gilles
Lyard, Etienne
Produit, Nicolas
Raiola, Aramis
Saha, Prasenjit
Stanic, Lucijana
Walter, Roland
Astrophysics of Galaxies
Instrumentation and Methods for Astrophysics
The Hanbury Brown-Twiss (HBT) effect, discovered in the 1950s and further developed in the 1960s, was originally used to estimate stellar angular diameters through intensity correlations measured by spatially separated detectors. Further developments started from HBT experiments to exploit quantum bunching of photons in incoherent light sources played foundational role in the development of quantum optics. When the two detectors in an HBT experiment are co-located, typically implemented using a beam splitter, a zero-baseline intensity correlation is obtained, which after deconvolution of the detector response function, yields the temporal component of the second-order coherence function. Unlike spatial correlations, this function is independent of the source brightness distribution, or its size, giving direct insight into the properties of the source's emission process itself - photon statistics. Along with photometric and spectral information, the second order coherence function can be used to constrain the emission mechanisms and discriminate between thermal, synchrotron, bremsstrahlung and stimulated emission processes. Evolution of the emission processes would likewise drive changes in the second order coherence. Light coherence information along with multi-wavelength observations, can become a complementary "messenger", carrying internal information about the astronomical source.
title Exploiting light coherence in astrophysics
topic Astrophysics of Galaxies
Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2512.12470