Interacting Kilonovae: Long-lasting Electromagnetic Counterparts to Binary Mergers in the Accretion Disks of Active Galactic Nuclei
arXiv:2211.03097 · doi:10.3847/2041-8213/aca025
Abstract
We investigate the dynamics and electromagnetic (EM) signatures of neutron star-neutron star (NS-NS) or neutron star-black hole (NS-BH) merger ejecta that occurs in the accretion disk of an active galactic nucleus (AGN). We find that the interaction between ejecta and disk gas leads to important effects on the dynamics and radiation. We show five stages of the ejecta dynamics: gravitational slowing down, coasting, Sedov-Taylor deceleration in the disk, re-acceleration after the breakout from the disk surface, and momentum-conserved snowplow phase. Meanwhile, the radiation from the ejecta is so bright that its typical peak luminosity reaches a few times . Since most of the radiation energy has converted from the kinetic energy of merger ejecta, we call such an explosive phenomenon an interacting kilonova (IKN). It should be emphasized that IKNe are very promising, bright EM counterparts to NS-NS/BH-NS merger events in AGN disks. The bright peak luminosity and long rising time (i.e., ten to twenty days in UV bands, thirty to fifty days in optical bands, and one hundred days to hundreds of days in IR bands) allow most survey telescopes to have ample time to detect an IKN. However, the peak brightness, peak time, and evolution pattern of the light curve of an IKN are similar to a superluminous supernova in a galactic nucleus and a tidal disruption event making it difficult to distinguish between them. But it also suggests that IKNe might have been present in recorded AGN transients.
ApJL accepted
References in corpus (22)
- Array Programming with NumPy
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- GW190521: A Binary Black Hole Merger with a Total Mass of
- 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
- Neutrino-driven winds from neutron star merger remnants
- Kilonovae
- Candidate Electromagnetic Counterpart to the Binary Black Hole Merger Gravitational Wave Event S190521g
- The AGN Black Hole Mass Database
- Neutrino signatures and the neutrino-driven wind in Binary Neutron Star Mergers
- AT2017gfo: an anisotropic and three-component kilonova counterpart of GW170817
- Intermediate mass black holes in AGN disks II. Model predictions & observational constraints
- Light Curve Modeling of Superluminous Supernova 2006gy: Collision between Supernova Ejecta and Dense Circumstellar Medium
- On r-process nucleosynthesis from matter ejected in binary neutron starmergers
- AGN Disks Harden the Mass Distribution of Stellar-mass Binary Black Hole Mergers
- Mass-gap Mergers in Active Galactic Nuclei
- GW190521 may be an intermediate mass ratio inspiral
- Electromagnetic Signatures of Relativistic Explosions in AGN Disks
- Neutron Star Mergers in AGN Accretion Disks: Cocoon and Ejecta Shock Breakouts
- Accretion-modified Stars in Accretion Disks of Active Galactic Nuclei: Slowly Transient Appearance
- The emergence of diffused Gamma-Ray Burst afterglows from the disks of Active Galactic Nuclei