English

Repulsive $\Lambda$ potentials in dense neutron star matter and binding energy of $\Lambda$ in hypernuclei

Nuclear Theory 2023-12-14 v2 Nuclear Experiment

Abstract

The repulsive three-body force between the lambda (Λ\Lambda) hyperon and medium nucleons is a key element in solving the hyperon puzzle in neutron stars. We investigate the binding energies of Λ\Lambda hyperon in hypernuclei to verify the repulsive Λ\Lambda potentials from the chiral effective field theory (χ\chiEFT) employing the Skyrme Hartree-Fock method. We find that the χ\chiEFT Λ\Lambda potential with the ΛNN\Lambda NN three-body forces reproduces the existing hypernuclear binding energy data, whereas the Λ\Lambda binding energies are overestimated without the ΛNN\Lambda NN three-body force. Additionally, we search for the parameter space of the Λ\Lambda potentials by varying the Taylor coefficients of the Λ\Lambda potential and the effective mass of Λ\Lambda at the saturation density. Our analysis demonstrates that the parameter region consistent with the Λ\Lambda binding energy data spans a wide range of the parameter space, including even more repulsive potentials than the χ\chiEFT prediction. We confirm that these strong repulsive Λ\Lambda potentials suppress the presence of Λ\Lambda in the neutron star matter. We found that the Λ\Lambda potentials repulsive at high densities are favored when the depth of the Λ\Lambda potential at the saturation density, UΛ(ρ0)=JΛU_\Lambda(\rho_0)=J_\Lambda, is JΛ29 MeVJ_\Lambda\gtrsim-29~\text{MeV}, while attractive ones are favored when JΛ31 MeVJ_\Lambda \lesssim -31~\text{MeV}. This suggests that the future high-resolution data of hypernuclei could rule out the scenario in which Λ\Lambdas appear through the precise determination of JΛJ_\Lambda within the accuracy of 1 MeV1~\text{MeV}.

Keywords

Cite

@article{arxiv.2306.17452,
  title  = {Repulsive $\Lambda$ potentials in dense neutron star matter and binding energy of $\Lambda$ in hypernuclei},
  author = {Asanosuke Jinno and Koichi Murase and Yasushi Nara and Akira Ohnishi},
  journal= {arXiv preprint arXiv:2306.17452},
  year   = {2023}
}

Comments

15 pages, 11 figures, 3 tables, figures updated and extended, (Published in Physical Review C)

R2 v1 2026-06-28T11:18:41.243Z