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Main Authors: Kincses, Dániel, Kovács, László, Csanád, Máté
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2605.26056
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author Kincses, Dániel
Kovács, László
Csanád, Máté
author_facet Kincses, Dániel
Kovács, László
Csanád, Máté
contents High-energy nuclear physics explores the properties of strongly interacting matter created in relativistic collisions of nuclei. Femtoscopy, a subfield of high-energy physics, utilizes quantum-statistical correlations of particles to characterize the space-time geometry of the particle-emitting source. Recent measurements and phenomenological investigations indicated that the shape of the source for identical pions can be well-described by Lévy-stable distributions. The significant power-law tail of the pion source observed both in experiment and in simulations has been shown to originate from the process of Lévy walk during the hadronic scattering phase of the collisions. To better understand the physical processes behind the formation of such power laws, an important next step is to investigate the particle species dependence, especially the source shape of identical kaon and proton pairs. As a direct continuation of our previous phenomenological studies, in this Letter, we present a detailed three-dimensional investigation of the two-particle source shape in simulations of Au+Au collisions at 200 GeV per nucleon collision energy using the EPOS3 model. We show the dependence of the extracted femtoscopic source parameters on particle species, as well as on centrality and average transverse momentum. We find that the scale parameters show an approximate transverse momentum scaling between pion, kaon, and proton pairs, while the power-law exponents depend more strongly on particle species. When new experimental measurements of kaon and proton correlations become available, these results will provide the basis of a data-model comparison.
format Preprint
id arxiv_https___arxiv_org_abs_2605_26056
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Particle species dependence of femtoscopic source parameters in high-energy nuclear collisions
Kincses, Dániel
Kovács, László
Csanád, Máté
High Energy Physics - Phenomenology
High-energy nuclear physics explores the properties of strongly interacting matter created in relativistic collisions of nuclei. Femtoscopy, a subfield of high-energy physics, utilizes quantum-statistical correlations of particles to characterize the space-time geometry of the particle-emitting source. Recent measurements and phenomenological investigations indicated that the shape of the source for identical pions can be well-described by Lévy-stable distributions. The significant power-law tail of the pion source observed both in experiment and in simulations has been shown to originate from the process of Lévy walk during the hadronic scattering phase of the collisions. To better understand the physical processes behind the formation of such power laws, an important next step is to investigate the particle species dependence, especially the source shape of identical kaon and proton pairs. As a direct continuation of our previous phenomenological studies, in this Letter, we present a detailed three-dimensional investigation of the two-particle source shape in simulations of Au+Au collisions at 200 GeV per nucleon collision energy using the EPOS3 model. We show the dependence of the extracted femtoscopic source parameters on particle species, as well as on centrality and average transverse momentum. We find that the scale parameters show an approximate transverse momentum scaling between pion, kaon, and proton pairs, while the power-law exponents depend more strongly on particle species. When new experimental measurements of kaon and proton correlations become available, these results will provide the basis of a data-model comparison.
title Particle species dependence of femtoscopic source parameters in high-energy nuclear collisions
topic High Energy Physics - Phenomenology
url https://arxiv.org/abs/2605.26056