Probing quarkyonic matter in neutron stars with the Bayesian nuclear-physics multimessenger astrophysics framework

Publication date

2024-02

Authors

Pang, Peter Tsun HoISNI 0000000512566404
Sivertsen, Lars
Somasundaram, Rahul
Dietrich, TimISNI 0000000518136325
Sen, Srimoyee
Tews, Ingo
Coughlin, Michael W.
van den Broeck, ChrisISNI 0000000458470830

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

taverne

Abstract

The interiors of neutron stars contain matter at the highest densities realized in our Universe. Interestingly, theoretical studies of dense matter, in combination with the existence of two-solar-mass neutron stars, indicate that the speed of sound cs has to increase to values well above the conformal limit (cs2=1/3) before decreasing again at higher densities. The decrease could be explained by either a strong first-order phase transition or a crossover transition from hadronic to quark matter. The latter scenario leads to a pronounced peak in the speed of sound, reaching values above the conformal limit, naturally explaining the inferred behavior. In this work, we use the nuclear-physics multimessenger astrophysics (NMMA) framework to compare predictions of the quarkyonic matter model with astrophysical observations of neutron stars, with the goal of constraining model parameters. Assuming quarkyonic matter to be realized within neutron stars, we find that there can be a significant amount of quarks inside the cores of neutron stars with masses in the two-solar-mass range, amounting to up to ≈0.13M, contributing ≈5.9% of the total mass. Furthermore, for the quarkyonic matter model investigated here, the radius of a 1.4M neutron star would be 13.44-1.54+1.69(13.54-1.04+1.02)km, at 95% credibility, without (with) the inclusion of AT2017gfo.

Keywords

Taverne, Nuclear and High Energy Physics

Citation

Pang, P T H, Sivertsen, L, Somasundaram, R, Dietrich, T, Sen, S, Tews, I, Coughlin, M W & Van Den Broeck, C 2024, 'Probing quarkyonic matter in neutron stars with the Bayesian nuclear-physics multimessenger astrophysics framework', Physical Review C, vol. 109, no. 2, 025807. https://doi.org/10.1103/PhysRevC.109.025807