Abstract
We analyze the effects of including Δ(1232) isobars in an equation of state (EoS) for cold, β -stable neutron star (NS) matter, employing relativistic nuclear mean field theory. The selected EoS reproduces the properties of nuclear matter and finite nuclei and, in the astrophysical context, allows for the presence of hyperons in NSs having masses larger than 2 M ⊙ . We find that the composition and structure of NSs is critically influenced by the addition of the Δ isobars, which allows us to constrain their interaction with the meson fields, taking into account astrophysical information. Imposing that the EoS is stable and ensures the existence of 2 M ⊙ NSs, as well as requiring agreement with data of Δ excitation in nuclei, we find that, in the absence of other mechanisms stiffening the EoS at high densities, the interaction of the Δ isobars with the sigma and omega meson fields must be at least 10% stronger than those of the nucleons. Moreover, the NS moment of inertia turns out to be sensitive to the presence of Δ isobars, whereas the inclusion of Δ isobars in the EoS allows for smaller stellar radii and for a lower value of the tidal deformability, consistent with the analysis of the GW170817 merger event.
Cite
CITATION STYLE
Ribes, P., Ramos, A., Tolos, L., Gonzalez-Boquera, C., & Centelles, M. (2019). Interplay between Delta Particles and Hyperons in Neutron Stars. The Astrophysical Journal, 883(2), 168. https://doi.org/10.3847/1538-4357/ab3a93
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.