Difference in proton radii of mirror nuclei as a possible surrogate for the neutron skin
arXiv:1709.10182 · doi:10.1103/PhysRevC.97.014314
Abstract
It has been recently suggested that differences in the charge radii of mirror nuclei are proportional to the neutron-skin thickness of neutron-rich nuclei and to the slope of the symmetry energy [B.A. Brown Phys. Rev. Lett. 119, 122502 (2017)]. The determination of the neutron skin has important implications for nuclear physics and astrophysics. Although the use of electroweak probes provides a largely model-independent determination of the neutron skin, the experimental challenges are enormous. Thus, the possibility that differences in the charge radii of mirror nuclei may be used as a surrogate for the neutron skin is a welcome alternative. To test the validity of this assumption we perform calculations based on a set of relativistic energy density functionals that span a wide region of values of . Our results confirm that the difference in charge radii of various neutron-deficient nickel isotopes and their corresponding mirror nuclei is indeed strongly correlated to both the neutron-skin thickness and . Moreover, given that various neutron-star properties are also sensitive to , a data-to-data relation emerges between the difference in charge radii of mirror nuclei and the radius of low-mass neutron stars.
5 pages, 3 figures
References in corpus (12)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Neutron Star Observations: Prognosis for Equation of State Constraints
- Neutron-Rich Nuclei in Heaven and Earth
- Nuclear symmetry energy probed by neutron skin thickness of nuclei
- Neutron skin of 208Pb, nuclear symmetry energy, and the parity radius experiment
- Relativistic effective interaction for nuclei, giant resonances, and neutron stars
- Building relativistic mean field models for finite nuclei and neutron stars
- Core-crust transition in neutron stars: predictivity of density developments
- Pygmy dipole resonance as a constraint on the neutron skin of heavy nuclei
- Pygmy Resonances and Neutron Skins
- Isospin Diffusion in Heavy-Ion Collisions and the Neutron Skin Thickness of Lead
- Pygmy and core polarization dipole modes in Pb: connecting nuclear structure to stellar nucleosynthesis