$\Lambda NN$ input to neutron stars from hypernuclear data
Eliahu Friedman, Avraham Gal

TL;DR
This paper refines the $ extLambda$-nucleus potential using hypernuclear data, providing key insights into hyperon interactions in neutron stars and suggesting experimental tests for the $ extLambda NN$ potential's density dependence.
Contribution
It extends previous hypernuclear analyses to include higher $ extLambda$ states, refining the $ extLambda N$ and $ extLambda NN$ potentials relevant for neutron star matter.
Findings
Potential depths at nuclear matter density are consistent with earlier results.
Results support the role of $ extLambda NN$ interactions in resolving the hyperon puzzle.
The study suggests experimental tests for the density dependence of the $ extLambda NN$ potential.
Abstract
This work is a sequel to our two 2023 publications [PLB 837 137669, NPA 1039 122725] where fitting 14 1 and 1 single-particle binding energies in hypernuclei across the periodic table led to a well-defined -nucleus optical potential. The potential consists of a Pauli modified linear-density () and a quadratic-density () terms. The present work reports on extending the above analysis to 21 single-particle data points input by including 1 and 1 states in medium-weight and heavy hypernuclei. The upgraded results for the and potential depths at nuclear-matter density ~fm, ~MeV and ~MeV together with the total depth ~MeV, agree within errors with the earlier results. The …
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Taxonomy
TopicsGeophysics and Gravity Measurements · Pulsars and Gravitational Waves Research · Statistical and numerical algorithms
