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    Finite density nuclear matter and neutron stars in hard-wall AdS/QCD model

    Jun-Shuai Wang1,2,*, Li-Kang Yang3, Yin-Fang Liu4, and Yong-Liang Ma4,†

    • *Contact author: wangjunshuai@ucas.ac.cn
    • †Contact author: ylma@nju.edu.cn

    Phys. Rev. D 112, 106008 – Published 12 November, 2025

    DOI: https://doi.org/10.1103/dpwt-ms4k

    Abstract

    We investigate properties of nuclear matter, equation of state of neutron stars, and its mass-radius relation in a hard-wall AdS/QCD model by regarding baryons as solitonic configurations in gauge fields. Compared with previous approaches, we employ a different homogeneous approximation that takes into account the equations of motion for the pure gauge fields. By choosing appropriate parameters, we realize a chiral phase transition within the baryonic phase, where the chiral condensate decreases with the baryon chemical potential, until it reaches zero—chiral symmetry is restored. In addition, independent of the existence of chiral phase transition, we also find that the speed of sound converges to the conformal limit at the density relevant to cores of massive stars but the trace of energy-momentum tensor does not vanish, which indicates the pseudoconformal structure and intrinsic manifestation of scale symmetry in compact star matter. Through calculations, we obtain an equation of state that is more tightly constrained than previous works, and the resulting mass-radius relation of neutron stars is consistent with current observations.

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