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    Symmetry-energy expansion with strange dense matter

    Yumu Yang1,*, Nikolas Cruz Camacho1,†, Mauricio Hippert2,‡, and Jacquelyn Noronha-Hostler1,§

    • *Contact author: yumuy2@illinois.edu
    • †Contact author: cnc6@illinois.edu
    • ‡Contact author: hippert@cbpf.br
    • §Contact author: jnorhos@illinois.edu

    Phys. Rev. C 113, 045805 – Published 9 April, 2026

    DOI: https://doi.org/10.1103/trk9-8gph

    Abstract

    The quantum chromodynamics (QCD) phase diagram at large densities and low temperatures can be probed using both neutron stars and low-energy heavy-ion collisions. Heavy-ion collisions are nearly isospin-symmetric systems, whereas neutron stars are highly isospin asymmetric since they are neutron rich. The symmetry-energy expansion is used to connect these regimes across isospin asymmetry. However, the current symmetry-energy expansion does not account for strange particles. In this work, we include finite strangeness by redefining the isospin-asymmetry parameter and the symmetry-energy expansion in a way that is consistent with QCD SU(3) flavor symmetry. Our new symmetry energy works well beyond typical neutron star central densities and admits a skewness term in the presence of strangeness for the case of weak equilibrium.

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