Strong model-agnostic constraints for twin-star solutions

Fuente: arXiv
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Main Authors: Blomqvist, Sofia, Ecker, Christian, Gorda, Tyler, Vuorinen, Aleksi
Format: Preprint
Published: 2025
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author Blomqvist, Sofia
Ecker, Christian
Gorda, Tyler
Vuorinen, Aleksi
author_facet Blomqvist, Sofia
Ecker, Christian
Gorda, Tyler
Vuorinen, Aleksi
contents We perform a model-agnostic Bayesian analysis of the neutron-star-matter equation of state (EoS), using known ab-initio constraints and astrophysical observations to limit its behavior at intermediate densities. Permitting explicit first-order phase transitions allows us to systematically search for twin-star solutions, i.e. the existence of stars degenerate in mass but differing in radius. We find that current observational constraints exclude all but two classes of twin stars. The first is characterized by a first-order transition occurring at a very low density, where the material properties of the system either stay largely intact or move away from the conformal limit. In the second, more interesting class, the discontinuity in the mass-radius curve emerges after a rapid crossover transition at a significantly higher density, with the speed of sound exhibiting two sharp peaks at distinct densities. Since neither class shows clear conformalization upon entering the second branch, the standard twin-star scenario linking the mass-radius discontinuity to deconfinement can be firmly ruled out, while even the remaining solutions -- disfavored by per-mille Bayes factors and in tension with theoretical bounds -- are likely to be excluded in the future.
format Preprint
id arxiv_https___arxiv_org_abs_2512_19477
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Strong model-agnostic constraints for twin-star solutions
Blomqvist, Sofia
Ecker, Christian
Gorda, Tyler
Vuorinen, Aleksi
High Energy Astrophysical Phenomena
High Energy Physics - Phenomenology
Nuclear Theory
We perform a model-agnostic Bayesian analysis of the neutron-star-matter equation of state (EoS), using known ab-initio constraints and astrophysical observations to limit its behavior at intermediate densities. Permitting explicit first-order phase transitions allows us to systematically search for twin-star solutions, i.e. the existence of stars degenerate in mass but differing in radius. We find that current observational constraints exclude all but two classes of twin stars. The first is characterized by a first-order transition occurring at a very low density, where the material properties of the system either stay largely intact or move away from the conformal limit. In the second, more interesting class, the discontinuity in the mass-radius curve emerges after a rapid crossover transition at a significantly higher density, with the speed of sound exhibiting two sharp peaks at distinct densities. Since neither class shows clear conformalization upon entering the second branch, the standard twin-star scenario linking the mass-radius discontinuity to deconfinement can be firmly ruled out, while even the remaining solutions -- disfavored by per-mille Bayes factors and in tension with theoretical bounds -- are likely to be excluded in the future.
title Strong model-agnostic constraints for twin-star solutions
topic High Energy Astrophysical Phenomena
High Energy Physics - Phenomenology
Nuclear Theory
url https://arxiv.org/abs/2512.19477