The effects of Thomson scattering and chemical mixing on early-time light curves of double peaked type IIb supernovae
arXiv:2310.16328 · doi:10.3847/1538-4357/ad08b5
Abstract
Previous numerical simulations of double-peaked SNe IIb light curves have demonstrated that the radius and mass of the hydrogen-rich envelope of the progenitor star can significantly influence the brightness and timescale of the early-time light curve around the first peak. In this study, we investigate how Thomson scattering and chemical mixing in the SN ejecta affect the optical light curves during the early stages of the SNe IIb using radiation hydrodynamics simulations. By comparing the results from two different numerical codes (i.e., \stella{} and \snec{}), we find that the optical brightness of the first peak can be reduced by more than a factor of 3 due to the effect of Thomson scattering that causes the thermalization depth to be located below the Rosseland-mean photosphere, compared to the corresponding case where this effect is ignored. We also observe a short-lived plateau-like feature lasting for a few days in the early-time optical light curves of our models, in contrast to typical observed SNe IIb that show a quasi-linear decrease in optical magnitudes after the first peak. A significant degree of chemical mixing between the hydrogen-rich envelope and the helium core in SN ejecta is required to reconcile this discrepancy between the model prediction and observation. Meanwhile, to properly reproduce the first peak, a significant mixing of \nifs{} into the hydrogen-rich outermost layers should be restricted. Our findings indicate that inferring the SN IIb progenitor structure from a simplified approach that ignores these two factors may introduce substantial uncertainty.
28 pages, 21 figures, accepted for ApJ
References in corpus (19)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Theoretical light curves for deflagration models of Type Ia supernova
- Unifying Type II Supernova Light Curves with Dense Circumstellar Material
- Late-time spectral line formation in Type IIb supernovae, with application to SN 1993J, SN 2008ax, and SN 2011dh
- The impact of mass-loss on the evolution and pre-supernova properties of red supergiants
- SN 2013df, a double-peaked IIb supernova from a compact progenitor and an extended H envelope
- The progenitor and early evolution of the Type IIb SN 2016gkg
- Supernova 1987A: 3D Mixing and light curves for explosion models based on binary-merger progenitors
- ZTF18aalrxas: A Type IIb Supernova from a very extended low-mass progenitor
- Study of Supernovae Important for Cosmology
- The circumstellar material around the Type IIP SN 2021yja
- SN2017jgh - A high-cadence complete shock cooling lightcurve of a SN IIb with the Kepler telescope
- The influence of line opacity treatment in STELLA on supernova light curves
- SN 2020bio: A Double-peaked, H-poor Type IIb Supernova with Evidence of Circumstellar Interaction
- SN 2017czd: A Rapidly Evolving Supernova from a Weak Explosion of a Type IIb Supernova Progenitor
- Optical color of Type Ib and Ic supernovae and implications for their progenitors
- Optical and spectral observations and hydrodynamic modelling of Type IIb Supernova 2017gpn
- Opacity of Ejecta in Calculations of Supernova Light Curves