The Peak of the Fallback Rate from Tidal Disruption Events: Dependence on Stellar Type
Abstract
A star completely destroyed in a tidal disruption event (TDE) ignites a luminous flare that is powered by the fallback of tidally stripped debris to a supermassive black hole (SMBH) of mass . We analyze two estimates for the peak fallback rate in a TDE, one being the "frozen-in" model, which predicts a strong dependence of the time to peak fallback rate, , on both stellar mass and age, with yr for main sequence stars with masses and . The second estimate, which postulates that the star is completely destroyed when tides dominate the maximum stellar self-gravity, predicts that is very weakly dependent on stellar type, with for , while for a Kroupa initial mass function truncated at . This second estimate also agrees closely with hydrodynamical simulations, while the frozen-in model is discrepant by orders of magnitude. We conclude that (1) the time to peak luminosity in complete TDEs is almost exclusively determined by SMBH mass, and (2) massive-star TDEs power the largest accretion luminosities. Consequently, (a) decades-long extra-galactic outbursts cannot be powered by complete TDEs, including massive-star disruptions, and (b) the most highly super-Eddington TDEs are powered by the complete disruption of massive stars, which -- if responsible for producing jetted TDEs -- would explain the rarity of jetted TDEs and their preference for young and star-forming host galaxies.
Keywords
Cite
@article{arxiv.2310.11496,
title = {The Peak of the Fallback Rate from Tidal Disruption Events: Dependence on Stellar Type},
author = {Ananya Bandopadhyay and Julia Fancher and Aluel Athian and Valentino Indelicato and Sarah Kapalanga and Angela Kumah and Daniel A. Paradiso and Matthew Todd and Eric R. Coughlin and C. J. Nixon},
journal= {arXiv preprint arXiv:2310.11496},
year = {2023}
}
Comments
10 pages, 4 figures, ApJL accepted