English

Constraining the symmetry energy at subsaturation densities using isotope binding energy difference and neutron skin thickness

Nuclear Theory 2014-07-02 v2 Solar and Stellar Astrophysics Nuclear Experiment

Abstract

We show that the neutron skin thickness Δrnp\Delta r_{np} of heavy nuclei is uniquely fixed by the symmetry energy density slope L(ρ)L({\rho}) at a subsaturation cross density ρc0.11\rho_c \approx 0.11 fm3^{-3} rather than at saturation density ρ0\rho_0, while the binding energy difference ΔE\Delta E between a heavy isotope pair is essentially determined by the magnitude of the symmetry energy Esym(ρ)E_{\text{sym}}({\rho}) at the same ρc\rho_c. Furthermore, we find a value of L(ρc)L({\rho_c}) leads to a negative Esym(ρ0)E_{\text{sym}}({\rho_{0}})-L(ρ0)L({\rho_{0}}) correlation while a value of Esym(ρc)E_{\text{sym}}({\rho_{c})} leads to a positive one. Using data on Δrnp\Delta r_{np} of Sn isotopes and ΔE\Delta E of a number of heavy isotope pairs, we obtain simultaneously Esym(ρc)=26.65±0.20E_{\text{sym}}({\rho_{c})}=26.65\pm0.20 MeV and L(ρc)=46.0±4.5L({\rho_c})= 46.0\pm4.5 MeV at 95% confidence level, whose extrapolation gives Esym(ρ0)=32.3±1.0E_{\text{sym}}({\rho_{0}})=32.3\pm1.0 MeV and L(ρ0)=45.2±10.0L({\rho_{0}})=45.2\pm10.0 MeV. The implication of these new constraints on the Δrnp\Delta r_{np} of 208^{208}Pb and the core-crust transition density in neutron stars is discussed.

Keywords

Cite

@article{arxiv.1302.5327,
  title  = {Constraining the symmetry energy at subsaturation densities using isotope binding energy difference and neutron skin thickness},
  author = {Zhen Zhang and Lie-Wen Chen},
  journal= {arXiv preprint arXiv:1302.5327},
  year   = {2014}
}

Comments

6 pages, 4 figures, 1 table. Discussions added. Accepted version to appear in PLB