On the Validity of Steady-State for Nebular Phase Kilonovae
arXiv:2112.07484 · doi:10.1093/mnras/stab3674
Abstract
The radioactively powered transient following a binary neutron star (BNS) merger, known as a kilonova (KN), is expected to enter the steady-state nebular phase a few days after merger. Steady-state holds until thermal reprocessing time-scales become long, at which point the temperature and ionisation states need to be evolved time-dependently. We study the onset and significance of time-dependent effects using the non-local thermodynamic equilibrium (NLTE) spectral synthesis code SUMO. We employ a simple single-zone model with an elemental composition of Te, Ce, Pt and Th, scaled to their respective solar abundances. The atomic data are generated using the Flexible Atomic Code (FAC), and consist of energy levels and radiative transitions, including highly forbidden lines. We explore the KN evolution from 5 to 100 days after merger, varying ejecta mass and velocity. We also consider variations in the degree of electron magnetic field trapping, as well as radioactive power generation for alpha and beta decay (but omitting fission products). We find that the transition time, and magnitude of steady-state deviations are highly sensitive to these parameters. For typical KN ejecta, the deviations are minor within the time-frame studied. However, low density ejecta with low energy deposition show significant differences from days. Important deviation of the ionisation structure solution impacts the temperature by altering the overall line cooling. Adiabatic cooling becomes important at days which, in addition to the temperature and ionisation effects, lead to the bolometric light curve deviating from the instantaneous radioactive power deposited.
15 pages with 9 figures in main text. 31 pages with appendices. Accepted for publication in MNRAS
References in corpus (18)
- Multi-messenger Observations of a Binary Neutron Star Merger
- Origin of the heavy elements in binary neutron-star mergers from a gravitational wave event
- Swope Supernova Survey 2017a (SSS17a), the Optical Counterpart to a Gravitational Wave Source
- The Electromagnetic Counterpart of the Binary Neutron Star Merger LIGO/VIRGO GW170817. II. UV, Optical, and Near-IR Light Curves and Comparison to Kilonova Models
- A kilonova as the electromagnetic counterpart to a gravitational-wave source
- Light Curves of the Neutron Star Merger GW170817/SSS17a: Implications for R-Process Nucleosynthesis
- The Emergence of a Lanthanide-Rich Kilonova Following the Merger of Two Neutron Stars
- Optical emission from a kilonova following a gravitational-wave-detected neutron-star merger
- Identification of strontium in the merger of two neutron stars
- Neutrino-driven winds from neutron star merger remnants
- Kilonovae
- AT2017gfo: an anisotropic and three-component kilonova counterpart of GW170817
- Properties of Kilonovae from Dynamical and Post-Merger Ejecta of Neutron Star Mergers
- Chemical evolution with rotating massive star yields II. A new assessment of the solar s- and r- process components
- Spitzer Mid-Infrared Detections of Neutron Star Merger GW170817 Suggests Synthesis of the Heaviest Elements
- Extended calculations of energy levels and transition rates of Nd II-IV ions for application to neutron star mergers
- Monte Carlo radiative transfer for the nebular phase of Type Ia supernovae
- Late time kilonova light curves and implications to GW 170817