Investigating the role of nuclear parameters on oscillation modes in hot Neutron Stars
arXiv:2408.00739 · doi:10.1103/PhysRevD.111.023017
Abstract
Recent studies have revealed that certain nuclear parameters are more dominant than others in governing global neutron star properties, such as its structure or oscillation mode characteristics. Although neutron stars can in general assumed to be cold, in astrophysical scenarios such as newly born neutron stars or remnants of binary neutron star mergers, finite temperature effects play a non-negligible role. In this work, we perform a consistent and systematic investigation of the role of nuclear parameters and thermal effects on neutron star properties and fluid oscillation modes within a full general relativistic scheme. We impose constraints on the parameter space of the relativistic mean field model using state-of-the-art information from terrestrial experiments and multi-messenger astrophysical data. We find effective nucleon mass to be the most important nuclear parameter controlling astrophysical observables of hot neutron stars, similar to the cold beta equilibrated matter. However, we conclude that the interplay among saturation properties and astrophysical observables depends not only on the thermal configurations considered but also on the constraints imposed. We also investigated the role of nuclear saturation parameters on some universal relations for hot NSs which are important in gravitational wave asteroseismology. Our investigation confirmed that these relations are mostly insensitive to nuclear saturation properties and mainly affected by variation of charge fraction in the star.
24 pages, 3 tables
References in corpus (47)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- PSR J0030+0451 Mass and Radius from NICER Data and Implications for the Properties of Neutron Star Matter
- A NICER View of PSR J0030+0451: Millisecond Pulsar Parameter Estimation
- Theory of Core-Collapse Supernovae
- Relativistic effective interaction for nuclei, giant resonances, and neutron stars
- Three-dimensional core-collapse supernova simulated using a 15 progenitor
- Building relativistic mean field models for finite nuclei and neutron stars
- Results of the ASY-EOS experiment at GSI: The symmetry energy at suprasaturation density
- New Hyperon Equations of State for Supernovae and Neutron Stars in Density-dependent Hadron Field Theory
- Proto-Neutron and Neutron Stars in a Chiral SU(3) Model
- The Dynamics of Binary Neutron Star Mergers and of GW170817
- Towards Understanding Astrophysical Effects of Nuclear Symmetry Energy
- Neutron matter from chiral two- and three-nucleon calculations up to NLO
- A new temperature dependent hyperonic equation of state: application to rotating neutron star models and I-Q-relations
- Nuclear equation of state for arbitrary proton fraction and temperature based on chiral effective field theory and a Gaussian process emulator
- Gravitational waves from f-modes excited by the inspiral of highly eccentric neutron star binaries
- Gravitational wave asteroseismology with protoneutron stars
- General relativistic treatment of -mode oscillations of hyperonic stars
- Rotating proto-neutron stars: spin evolution, maximum mass and I-Love-Q relations
- Equation of State Dependence of Gravitational Waves in Core-Collapse Supernovae
- Effect of hyperons on f-mode oscillations in Neutron Stars
- Probing mass-radius relation of protoneutron stars from gravitational-wave asteroseismology
- GW170817 implications on the frequency and damping time of f-mode oscillations of neutron stars
- Beta equilibrium under neutron star merger conditions
- Dependence of outer boundary condition on protoneutron star asteroseismology with gravitational-wave signatures
- Imposing multi-physics constraints at different densities on the Neutron Star Equation of State
- Multi-physics constraints at different densities to probe nuclear symmetry energy in hyperonic neutron stars
- Thermal Effects in Binary Neutron Star Mergers
- Role of vector self-interaction in Neutron Star properties
- Accuracy of relativistic Cowling approximation in protoneutron star asteroseismology
- Probing neutron-star matter in the lab: similarities and differences between binary mergers and heavy-ion collisions
- Dimension dependence of numerical simulations on gravitational waves from protoneutron stars
- Universal relations for rapidly rotating cold and hot hybrid star
- Bayesian Inference of the Dense Matter Equation of State built upon Covariant Density Functionals
- Exploring thermal effects of the hadron-quark matter transition in neutron star mergers
- Impact of updated Multipole Love numbers and f-Love Universal Relations in the context of Binary Neutron Stars
- Thermal behavior as indicator for hyperons in binary neutron star merger remnants
- Nuclear Matter and Neutron Stars from Relativistic Brueckner-Hartree-Fock Theory
- Three approaches for the classification of protoneutron star oscillation modes
- Constraining the equation of state of hybrid stars using recent information from multidisciplinary physics
- Frequencies of - and -oscillation modes in cold and hot compact stars
- Universality in supernova gravitational waves with proto-neutron star properties
- Probing hadron-quark phase transition in twin stars using -modes
- New covariant density functionals of nuclear matter for compact star simulations
- Thermodynamics of Hot Neutron Stars and Universal Relations
- Non-radial oscillations in newly born compact star considering effects of phase transition
- Tabulated Equations of State From Models Informed by Chiral Effective Field Theory
Cited by in corpus (5)
- Non-Radial Oscillation Modes in Hybrid Stars with Hyperons and Delta Baryons
- and mode oscillation of proto-neutron stars with systematic variation of the nucleon effective mass
- -mode oscillations in hot Neutron Stars: Effect of hyperons and neutrino trapping
- Hot Holographic 2-flavor Quark Star
- Realistic Equations of State Informing Neutron Star Post-Merger Gravitational-Wave Frequencies