Barker, Brandon L. and O’Connor, Evan P. and Couch, Sean M. (2023) Inferring Type II-P Supernova Progenitor Masses from Plateau Luminosities. The Astrophysical Journal Letters, 944 (1). L2. ISSN 2041-8205
2.pdf - Published Version
Download (867kB)
Abstract
Connecting observations of core-collapse supernova explosions to the properties of their massive star progenitors is a long-sought, and challenging, goal of supernova science. Recently, Barker et al. presented bolometric light curves for a landscape of progenitors from spherically symmetric neutrino-driven core-collapse supernova (CCSN) simulations using an effective model. They find a tight relationship between the plateau luminosity of the Type II-P CCSN light curve and the terminal iron-core mass of the progenitor. Remarkably, this allows us to constrain progenitor properties with photometry alone. We analyze a large observational sample of Type II-P CCSN light curves and estimate a distribution of iron-core masses using the relationship of Barker et al. The inferred distribution matches extremely well with the distribution of iron-core masses from stellar evolutionary models and namely, contains high-mass iron cores that suggest contributions from very massive progenitors in the observational data. We use this distribution of iron-core masses to infer minimum and maximum masses of progenitors in the observational data. Using Bayesian inference methods to locate optimal initial mass function parameters, we find ${M}_{\min }={9.8}_{-0.27}^{+0.37}$ and ${M}_{\max }={24.0}_{-1.9}^{+3.9}$ solar masses for the observational data.
Item Type: | Article |
---|---|
Subjects: | Afro Asian Library > Physics and Astronomy |
Depositing User: | Unnamed user with email support@afroasianlibrary.com |
Date Deposited: | 18 Apr 2023 07:16 |
Last Modified: | 20 Jul 2024 09:45 |
URI: | http://classical.academiceprints.com/id/eprint/579 |