Nuclei in Core-Collapse Supernovae Engine
arXiv:2211.01050 · doi:10.1016/j.ppnp.2022.104018
Abstract
Herein, we review the nuclear equations of state (EOSs) %for core-collapse supernova simulations and the constituent nuclei of core-collapse supernovae (CCSNe) and their roles in CCSN simulations. Various nuclei such as deuterons, iron, and extremely neutron-rich nuclei compose in the central engines of CCSNe. The center of a collapsing core is dominated by neutron-rich heavy nuclei prior to the occurrence of core bounce. Their weak interactions significantly affect the neutrino emission and the size of the produced proto-neutron star. After a core bounce, heavy nuclei are dissolved to protons, neutrons, and light nuclei between the expanding shock wave and the newly formed neutron star (NS). Some of the key components in determining the shock-wave dynamics and supernova explosion of outer envelopes are neutrino interactions of nucleons and light nuclei such as deuterons. An EOS provides the relations between thermodynamical properties and the nuclear composition, and is needed to simulate this explosion. Further investigations on uniform and non-uniform nuclear matter are needed to improve the understanding of the mechanism of CCSNe and the properties of supernova nuclei. The knowledge of the EOS for uniform nuclear matter is being continually improved by a combination of microscopic calculations, terrestrial experiments, and NS observations. With reference to various nuclear experiments and current theories, the finite temperature effects on heavy nuclei, formation of light nuclei in dilute nuclear matter, and transition to uniform nuclear matter should be improved in the model of the EOS for non-uniform nuclear matter.
57 pages, 23 figures, Accepted by Prog. Part. Nucl. Phys
References in corpus (27)
- Surface diffuseness correction in global mass formula
- Modeling GW170817 based on numerical relativity and its implications
- Constraints on neutron star radii based on chiral effective field theory interactions
- Three-dimensional core-collapse supernova simulated using a 15 progenitor
- Nuclear equation of state for core-collapse supernova simulations with realistic nuclear forces
- Muon Creation in Supernova Matter Facilitates Neutrino-driven Explosions
- A New Open-Source Nuclear Equation of State Framework based on the Liquid-Drop Model with Skyrme Interaction
- Light nuclei quasiparticle energy shift in hot and dense nuclear matter
- Astrophysical Implications of Equation of State for Hadron-Quark Mixed Phase: Compact Stars and Stellar Collapses
- Neutrino signals from the formation of black hole: a probe of equation of state of dense matter
- Correlated Signatures of Gravitational-Wave and Neutrino Emission in Three-Dimensional General-Relativistic Core-Collapse Supernova Simulations
- Three-dimensional Boltzmann-Hydro code for core-collapse in massive stars I. special relativistic treatments
- Appearance of Light Clusters in Post-bounce Evolution of Core-Collapse Supernovae
- Neutrino-nucleon scattering in supernova matter from the virial expansion
- A systematic study of proto-neutron star convection in three-dimensional core-collapse supernova simulations
- A new equation of state for core-collapse supernovae based on realistic nuclear forces and including a full nuclear ensemble
- A comparative study of statistical models for nuclear equation of state of stellar matter
- Comparing treatments of weak reactions with nuclei in simulations of core-collapse supernovae
- Variational Calculation for the Equation of State of Nuclear Matter at Finite Temperatures
- Insights into non-axisymmetric instabilities in three-dimensional rotating supernova models with neutrino and gravitational-wave signatures
- Variational Theory of Hot Nucleon Matter
- Unblocking of stellar electron capture for neutron-rich nuclei at finite temperature
- A three-dimensional hydrodynamics simulation of oxygen-shell burning in the final evolution of a fast-rotating massive star
- Stellar electron capture rates on neutron-rich nuclei and their impact on core-collapse
- Impact of complex many-body correlations on electron capture in thermally excited nuclei around Ni
- Phase transitions in Core-Collapse Supernova Matter at sub-saturation densities
- Finite-temperature electron-capture rates for neutron-rich nuclei around N=50 and effects on core-collapse supernovae simulations
Cited by in corpus (6)
- The physics of Core-Collapse Supernovae: explosion mechanism and explosive nucleosynthesis
- Employing ternary fission of Pu as a probe of very neutron rich matter
- Equation of state in neutron stars and supernovae
- Impact of dineutrons on nuclear compositions of a core-collapse supernova
- Asymmetric emissions of neutrinos in the cooling of rotating proto-neutron stars
- Nuclear Drip Line and the Composition of Supernova Matter