A hybrid model of Skyrme- and Brueckner-type interactions for neutron star matter

Author:

Choi Soonchul1,Cheoun Myung-Ki12,Kim K S3,Kim Hungchong45,Sagawa H67

Affiliation:

1. Department of Physics and Origin of Matter and Evolution of Galaxies (OMEG) Institute, Soongsil University, Seoul 156-743, Korea

2. International Research Center for Big-Bang Cosmology and Element Genesis, and School of Physics, Beihang University, Beijing 100083, P. R. China

3. School of Liberal Arts and Science, Korea Aerospace University, Goyang 412-791, Korea

4. Research Institute of Basic Science, Korea Aerospace University, Goyang 412-791, Korea

5. Center for Extreme Nuclear Matters, Korea University, Seoul 02841, Korea

6. RIKEN, Nishina Center for Accelerator-Based Science, Wako 351-0198, Japan

7. Center for Mathematics and Physics, University of Aizu, Aizu-Wakamatsu, Fukushima 965-8560, Japan

Abstract

Abstract We suggest a hybrid model for neutron star matter to discuss the hyperon puzzle inherent in the 2.0 M$_{\odot}$ of the neutron star. For the nucleon–nucleon ($NN$) interaction, we employ the Skyrme–Hartree–Fock approach based on various Skyrme interaction parameter sets, and take the Brueckner–Hartree–Fock approach for the interactions related to hyperons. For the many-body interactions including hyperons, we make use of the multi-pomeron-exchange model, whose parameters have been adjusted to the data deduced from various hypernuclei properties. For clear understanding of the physics in the hybrid model, we discuss fractional functions of related particles, symmetry energies, and chemical potentials in dense matter. Finally, we investigate the equations of state and mass–radius relation of neutron stars, and show that the hybrid model can properly describe the 2.0 M$_{\odot}$ neutron star mass data with the many-body interaction employed in the hybrid model. Recent tidal deformability data from the gravitational wave observation are also compared to our calculations, especially in terms of the neutron skin of $^{208}$Pb and nuclear incompressibility.

Funder

National Research Foundation of Korea

Korea government

Publisher

Oxford University Press (OUP)

Subject

General Physics and Astronomy

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