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Insights on Skyrme parameters from GW170817

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arxiv 1905.02601 v1 pith:NJSMLG7F submitted 2019-05-06 nucl-th

classification nucl-th
keywords propertiesdensitylambdaneutronneutron-starnuclearskyrmestar
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abstract

The binary neutron-star merger event, GW170817, has cast a new light on nuclear physics research. Using a neutron-star model that includes a crust equation of state (EoS), we calculate the properties of a 1.4 solar-mass neutron star. The model incorporates more than 200 Skyrme energy density functionals, which describe nuclear matter properties, in the outer liquid core region of the neutron star. We find a power-law relation between the neutron-star tidal deformability, $\Lambda$, and the neutron-star radius, R. Without an explicit crust EoS, the model predicts smaller R and the difference becomes significant for stars with large radii. To connect the neutron star properties with nuclear matter properties, we confront the predicted values for $\Lambda$, against the Taylor expansion coefficients of the Skyrme interactions. There is no pronounced correlation between Skyrme parameters in symmetric nuclear matter and neutron star properties. However, we find the strongest correlation between $\Lambda$ and $K_{sym}$, the curvature of the density dependence of the symmetry energy at saturation density. At twice the saturation density, our calculations show a strong correlation between $\Lambda$ and total pressure providing guidance to laboratory nucleus-nucleus collision experiments.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Constraints on Skyrme Equations of State from Doubly Magic Nuclei, Ab-Initio Calculations of Low-Density Neutron Matter, and Neutron Stars

    nucl-th 2019-08 conditional novelty 6.0 of 10

    The authors find that reproducing a 2.1 solar mass maximum neutron star requires a neutron effective mass of 0.60-0.65 at saturation density, leading to radius 12.4 km and tidal deformability 423 for a 1.4 solar mass star.

  2. The key factor to determine the relation between radius and tidal deformability of neutron stars: slope of symmetry energy

    nucl-th 2019-09 conditional novelty 4.0 of 10

    For 1.4 solar mass neutron stars the radius-deformability relation is nearly independent of higher-order nuclear parameters but strongly depends on the symmetry energy slope L, and the relation fails for 1.8 solar mass stars.

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