Published 2022 | Version v1
Journal article

Delta-resonances and hyperons in proto-neutron stars and merger remnants

  • 1. Institute of Theoretical Physics, University of Wrocław, pl. M. Borna 9, 50-204, Wrocław (Poland)
  • 2. Frankfurt Institute for Advanced Studies, Ruth-Moufang str. 1, 60438, Frankfurt am Main (Germany)
  • 3. Department of Physics, Yerevan State University, 0025, Yerevan (Armenia)
  • 4. Byurakan Astrophysical Observatory, 0213, Byurakan (Armenia)

Description

The equation of state (EoS) and composition of dense and hot Δ-resonance admixed hypernuclear matter is studied under conditions that are characteristic of neutron star binary merger remnants and supernovas. The cold, neutrino free regime is also considered as a reference for the astrophysical constraints on the EoS of dense matter. Our formalism uses the covariant density functional (CDF) theory successfully adapted to include the full JP=1/2+ baryon octet and non-strange members of JP=3/2+ decouplet with density-dependent couplings that have been suitably adjusted to the existing laboratory and astrophysical data. The effect of Δ-resonances at finite temperatures is to soften the EoS of hypernuclear matter at intermediate densities and stiffen it at high densities. At low temperatures, the heavy baryons Λ, Δ, Ξ, Ξ0 and Δ0 appear in the given order if the Δ-meson couplings are close to those for the nucleon-meson couplings. As is the case for hyperons, the thresholds of Δ-resonances move to lower densities with the increase of temperature indicating a significant fraction of Δ's in the low-density subnuclear regime. We find that the Δ-resonances comprise a significant fraction of baryonic matter, of the order of 10% at temperatures of the order of several tens of MeV in the neutrino-trapped regime and, thus, may affect the supernova and binary neutron star dynamics by providing, for example, a new source for neutrino opacity or a new channel for bulk viscosity via the direct Urca processes. The mass-radius relation of isentropic static, spherically symmetric hot compact stars is discussed.

Availability note (English)

Available from: http://dx.doi.org/10.1140/epja/s10050-022-00792-w

Additional details

Publishing Information

Journal Title
European physical journal. A, Hadrons and nuclei (Internet)
Journal Volume
58
Journal Issue
7
Journal Page Range
vp.
ISSN
1434-601X

Optional Information

Notes
AID: 137