arXiv:2607.19125·v1·High Energy Physics — Phenomenology
Holographic Soliton Crystals for Dense Nuclear Matter and Neutron Stars
Lorenzo Bartolini🇦🇹 · Sven Bjarke Gudnason🇨🇳 · Jonas Mager🇦🇹 · Anton Rebhan🇦🇹
Abstract
We construct a nuclear-matter equation of state (EOS) from holographic QCD in the Witten-Sakai-Sugimoto (WSS) model, going beyond the homogeneous ansatz by building dense baryonic matter more directly from the solitonic description of holographic baryons. Employing the two-baryon interaction potential obtained from the linearized soliton tails sourced in the curved background by point-like (core) instantons, we assemble an infinite face-centered cubic (FCC) crystal with nearest neighbors in the most attractive channel as an approximation to the quantum liquid of baryons and compute the energy density , the chemical potential , and the pressure . We calibrate the symmetric-matter EOS by fixing the 't Hooft coupling and the WSS scale to saturation-density and onset-chemical-potential properties, and by including a quark-mass term to reproduce the physical pion mass . This fit turns out to remain reasonably close to the parameters required by the vacuum meson sector, while their modification is consistent with Brown-Rho scaling in a dense medium, and the incompressibility at saturation is of the correct order of magnitude, both in clear contrast to the homogeneous approximation. We then extend to beta-equilibrated matter, using phenomenological input for the symmetry energy, and obtain hybrid EOS and neutron-star observables that are compatible with the NICER constraints.
Comments: 36 pages, 8 figures