The thermalization of -rays in radioactive expanding ejecta: A simple model and its application for Kilonovae and Ia SNe
arXiv:2403.08769 · doi:10.1093/mnras/stae1795
Abstract
A semi-analytic approximation is derived for the time-dependent fraction of the energy deposited by radioactive decay -rays in a homologously expanding plasma of general structure. An analytic approximation is given for spherically symmetric plasma distributions. Applied to Kilonovae (KNe) associated with neutron stars mergers and Type Ia supernovae, our semi-analytic and analytic approximations reproduce, with a few percent and 10% accuracy, respectively, the energy deposition rates, , obtained in numeric Monte Carlo calculations. The time beyond which -ray deposition is inefficient is determined by an effective frequency-independent -ray opacity , , where is the average plasma column density. For -decay dominated energy release, is typically close to the effective Compton scattering opacity, with a weak dependence on composition. For KNe, depends mainly on the initial electron fraction , for (in contrast with earlier work that found larger by 1-2 orders of magnitude for low ), and is insensitive to the (large) nuclear physics uncertainties. Determining from observations will therefore measure the ejecta , providing a stringent test of models. For , a typical value expected for KNe, d.
18 pages, 15 figures, 1 table. submitted to MNRAS
References in corpus (19)
- Origin of the heavy elements in binary neutron-star mergers from a gravitational wave event
- Light Curves of the Neutron Star Merger GW170817/SSS17a: Implications for R-Process Nucleosynthesis
- Illuminating Gravitational Waves: A Concordant Picture of Photons from a Neutron Star Merger
- Kilonovae
- The Dynamics of Binary Neutron Star Mergers and of GW170817
- SkyNet: A modular nuclear reaction network library
- Numerical Relativity Simulations of the Neutron Star Merger GW170817: Long-Term Remnant Evolutions, Winds, Remnant Disks, and Nucleosynthesis
- Kilonovae across the nuclear physics landscape: The impact of nuclear physics uncertainties on r-process-powered emission
- Modeling Kilonova Light Curves: Dependence on Nuclear Inputs
- Production of very light elements and strontium in the early ejecta of neutron star mergers
- The critical role of nuclear heating rates, thermalization efficiencies and opacities for kilonova modelling and parameter inference
- Late time kilonova light curves and implications to GW 170817
- -process nucleosynthesis from compact binary mergers
- Impact of systematic nuclear uncertainties on composition and decay heat of dynamical and disk ejecta in compact binary mergers
- The Influence of Beta Decay Rates on r-Process Observables
- Radioactively-Powered Gamma-Ray Transient Associated with a Kilonova from Neutron Star Merger
- AT2018lqh and the nature of the emerging population of day-scale duration optical transients
- Solving the gamma-ray radiative transfer equation for supernovae
- An Analytic Description of Electron Thermalization in Kilonovae Ejecta
Cited by in corpus (7)
- Cautionary tales on heating-rate prescriptions in kilonovae
- SN 2022xlp: The second-known well-observed, intermediate-luminosity Iax supernova
- Data-driven approach for modeling the temporal and spectral evolution of kilonova systematic uncertainties
- Multi-messengers from the radioactive decay of -process nuclei
- Modeling the emission lines from r-process elements in Supernova nebulae
- All known Type Ia supernovae models fail to reproduce the observed bolometric luminosity-width correlation
- SN 2021pfs: A Type Ia Supernova Likely Affected by Progenitor Metallicity, as Revealed by Comparison with Its Twin Counterpart