Neutron star cooling - a challenge to the nuclear mean field
Hoang Sy Than, Dao T. Khoa, and Nguyen Van Giai

TL;DR
This paper compares different nuclear interactions within the Hartree-Fock framework to understand their implications on neutron star cooling, highlighting the challenge posed by varying symmetry energy behaviors at high densities.
Contribution
It evaluates two density-dependent M3Y interactions against other models, revealing their distinct high-density symmetry energy behaviors and implications for neutron star cooling mechanisms.
Findings
M3Y interactions show Asy-soft and Asy-stiff symmetry energy behaviors.
Different behaviors lead to contrasting neutron star cooling mechanisms.
The study highlights a dilemma between nuclear structure consistency and neutron star modeling.
Abstract
The two recent density-dependent versions of the finite-range M3Y interaction (CDM3Y and M3Y-P) have been probed against the bulk properties of asymmetric nuclear matter (NM) in the nonrelativistic Hartree Fock (HF) formalism. The same HF study has also been done with the famous Skyrme (SLy4) and Gogny (D1S and D1N) interactions which were well tested in the nuclear structure calculations. Our HF results are compared with those given by other many-body calculations like the Dirac-Brueckner Hartree-Fock approach or ab-initio variational calculation using free nucleon-nucleon interaction, and by both the nonrelativistic and relativistic mean-field studies using different model parameters. Although the two considered density-dependent versions of the M3Y interaction were proven to be quite realistic in the nuclear structure or reaction studies, they give two distinct behaviors of the…
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