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Constraints on the nuclear symmetry energy from asymmetric-matter calculations with chiral NN and 3N interactions

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arxiv 2009.04737 v1 pith:R3I4LT3Z submitted 2020-09-10 nucl-th

Constraints on the nuclear symmetry energy from asymmetric-matter calculations with chiral NN and 3N interactions

classification nucl-th
keywords energysymmetrynuclearcalculationschiralcommonlycontributioncontributions
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The nuclear symmetry energy is a key quantity in nuclear (astro)physics. It describes the isospin dependence of the nuclear equation of state (EOS), which is commonly assumed to be almost quadratic. In this work, we confront this standard quadratic expansion of the EOS with explicit asymmetric nuclear-matter calculations based on a set of commonly used Hamiltonians including two- and three-nucleon forces derived from chiral effective field theory. We study, in particular, the importance of non-quadratic contributions to the symmetry energy, including the non-analytic logarithmic term introduced by Kaiser [Phys.~Rev.~C \textbf{91}, 065201 (2015)]. Our results suggest that the quartic contribution to the symmetry energy can be robustly determined from the various Hamiltonians employed, and we obtain 1.00(8) MeV (or 0.55(8) MeV for the potential part) at saturation density, while the logarithmic contribution to the symmetry energy is relatively small and model-dependent. We finally employ the meta-model approach to study the impact of the higher-order contributions on the neutron-star crust-core transition density, and find a small 5\% correction.

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Cited by 4 Pith papers

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    nmma now jointly samples nuclear EoS parameters with GW and EM data via TOV emulators and Fiesta surrogates, delivering 20–60× speedups and future H0–nuclear constraints.

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