English

Universal relation between dipole polarizability of finite nuclei and neutron-star compactness

Nuclear Theory 2026-05-27 v2 High Energy Astrophysical Phenomena Solar and Stellar Astrophysics Nuclear Experiment

Abstract

The nuclear equation of state, which determines the structure and properties of neutron stars, remains subject to substantial theoretical uncertainties, leading to model dependence in predicted observables. Universal relations have emerged as a powerful tool to mitigate this dependence by linking neutron star observables in a framework-independent manner. In this work, we introduce a new universal relation that \emph{bridges} finite nuclei and neutron stars through the dimensionless quantity ζ=β1.4L~1\zeta = \beta_{1.4}\tilde{L}^{-1}, which couples the compactness of a 1.4 M1.4~M_{\odot} neutron star to the slope of the nuclear symmetry energy at saturation. The relation is examined under a broad set of relativistic energy density functionals with point-coupling and meson-exchange interactions, as well as non-relativistic Skyrme functionals. We demonstrate that ζ\zeta exhibits a strong exponential correlation with the electric dipole polarizability αD\alpha_D in finite nuclei across all considered equations of state. By exploiting experimental αD\alpha_D data for selected neutron-rich nuclei, we constrain ζ\zeta and translate these constraints into equation-of-state independent bounds on the neutron star radius R1.4R_{1.4} and the symmetry-energy slope LL, providing insights into the properties of neutron star matter.

Keywords

Cite

@article{arxiv.2601.16894,
  title  = {Universal relation between dipole polarizability of finite nuclei and neutron-star compactness},
  author = {P. S. Koliogiannis and T. Ghosh and E. Yuksel and N. Paar},
  journal= {arXiv preprint arXiv:2601.16894},
  year   = {2026}
}

Comments

v1: 10 pages, 4 figures, 4 tables; v2: 10 pages, 4 figures, 4 tables; matched published version in Physical Review C