English

Locating the QCD critical point with neutron-star observations

High Energy Astrophysical Phenomena 2025-06-13 v1 General Relativity and Quantum Cosmology High Energy Physics - Phenomenology High Energy Physics - Theory Nuclear Theory

Abstract

We present a probabilistic model for the QCD critical endpoint (CEP) and the equation of state (EOS) at β\beta-equilibrium, constrained by neutron-star observations. Using a hybrid framework that combines the holographic V-QCD model with an effective van der Waals description of nuclear matter, we generate a large ensemble of EOSs incorporating nuclear theory uncertainties. Constraining this ensemble with neutron-star mass-radius data and tidal deformability measurements from gravitational waves, we identify a strong first-order deconfinement transition at zero temperature, with a transition strength of ΔnPT/n0=3.750.53+0.70\Delta n_{\rm{PT}}/n_0 = 3.75^{+0.70}_{-0.53} and onset density nPT/n0=4.91.17+1.33n_{\rm{PT}}/n_0 = 4.9^{+1.33}_{-1.17}. The resulting posterior yields 95%95\% credible intervals for the CEP location: μcrit=626179+90MeV\mu_{\rm{crit}} = 626^{+90}_{-179}\,\rm{MeV}, Tcrit=1196+14MeVT_{\rm{crit}} = 119^{+14}_{-6}\,\rm{MeV}.

Keywords

Cite

@article{arxiv.2506.10065,
  title  = {Locating the QCD critical point with neutron-star observations},
  author = {Christian Ecker and Niko Jokela and Matti Järvinen},
  journal= {arXiv preprint arXiv:2506.10065},
  year   = {2025}
}

Comments

9 pages, 5 figures