Hydrogen and helium in the late phase of SNe IIb
arXiv:1007.1881 · doi:10.1111/j.1365-2966.2010.17186.x
Abstract
Supernovae of Type IIb contain large fractions of helium and traces of hydrogen, which can be observed in the early and late spectra. Estimates of the hydrogen and helium mass and distribution are mainly based on early-time spectroscopy and are uncertain since the respective lines are usually observed in absorption. Constraining the mass and distribution of H and He is important to gain insight into the progenitor systems of these SNe. We implement a NLTE treatment of hydrogen and helium in a three-dimensional nebular code. Ionisation, recombination, (non-)thermal electron excitation and H line scattering are taken into account to compute the formation of H, which is by far the strongest H line observed in the nebular spectra of SNe IIb. Other lines of H and He are also computed but are rarely identified in the nebular phase. Nebular models are computed for the Type IIb SNe 1993J, 2001ig, 2003bg and 2008ax as well as for SN 2007Y, which shows H absorption features at early times and strong H emission in its late phase, but has been classified as a SN Ib. We suggest to classify SN 2007Y as a SN IIb. Optical spectra exist for all SNe of our sample, and there is one IR nebular observation of SN 2008ax, which allows an exploration of its helium mass and distribution. We develop a three-dimensional model for SN 2008ax. We obtain estimates for the total mass and kinetic energy in good agreement with the results from light-curve modelling found in the literature. We further derive abundances of He, C, O, Ca and Ni. We demonstrate that H absorption is probably responsible for the double-peaked profile of the [O {\sc i}] 6300, 6363 doublet in several SNe IIb and present a mechanism alternative to shock interaction for generating late-time H emission of SNe IIb.
References in corpus (10)
- Asphericity in Supernova Explosions from Late-Time Spectroscopy
- Luminous Blue Variables as the progenitors of supernovae with quasi-periodic radio modulations
- Implications of the metallicity dependence of Wolf-Rayet winds
- The type IIb SN 2008ax: the nature of the progenitor
- The type IIb SN 2008ax: spectral and light curve evolution
- Double-peaked Oxygen Lines Are not Rare in Nebular Spectra of Core-Collapse Supernovae
- The Aspherical Properties of the Energetic Type Ic SN 2002ap as Inferred from its Nebular Spectra
- Spectropolarimetry of the Type IIb Supernova 2001ig
- Modeling the X-ray emission of SN 1993J
- Oxygen Recombination in the nebular phase of supernovae 1998bw and 2002ap
Cited by in corpus (36)
- Bolometric light curves and explosion parameters of 38 stripped-envelope core-collapse supernovae
- How much H and He is "hidden" in SNe Ib/c? I. - low-mass objects
- Late-time spectral line formation in Type IIb supernovae, with application to SN 1993J, SN 2008ax, and SN 2011dh
- Optical and near-infrared observations of SN 2011dh - The first 100 days
- SN 2009jf: a slow-evolving stripped-envelope core-collapse supernova
- Binary progenitor models of type IIb supernovae
- The He-rich Stripped-Envelope Core-Collapse Supernova 2008ax
- Multi-Wavelength Observations of Supernova 2011ei: Time-Dependent Classification of Type IIb and Ib Supernovae and Implications for their Progenitors
- Spectra of supernovae in the nebular phase
- The Progenitor of the Type IIb SN 2008ax Revisited
- SN2011hs: a Fast and Faint Type IIb Supernova from a Supergiant Progenitor
- Light curve and spectral evolution of the Type IIb SN 2011fu
- A physically motivated classification of stripped-envelope supernovae
- Supernova 2010as: the Lowest-Velocity Member of a Family of Flat-Velocity Type IIb Supernovae
- SN 2011fu: A type IIb Supernova with a luminous double-peaked light curve
- Optical studies of SN 2009jf: A type Ib supernova with an extremely slow decline and aspherical signature
- One year of monitoring of the Type IIb supernova SN 2011dh
- Light-travel-time diagnostics in early Supernova spectra: substantial mass loss of the IIb progenitor of SN 2013cu through a superwind
- The nebular spectrum of the type Ia supernova 2003hv: evidence for a non-standard event
- How do Type Ia Supernova Nebular Spectra Depend on Explosion Properties? Insights from Systematic non-LTE Modeling
- Nebular spectroscopy of the nearby type IIb supernova 2011dh
- Photometric, polarimetric, and spectroscopic studies of the luminous, slow-decaying Type Ib SN 2012au
- Ultraviolet Spectroscopy of Type IIb Supernovae: Diversity and the Impact of Circumstellar Material
- Modeling of the nebular-phase spectral evolution of stripped-envelope supernovae. New grids from 100 to 450 days
- SN 2017ivv: two years of evolution of a transitional Type II supernova
- The origin of the H-like structure in nebular spectra of type IIb supernovae
- Comparative Analysis of SN 2012dn Optical Spectra: Days -14 to +114
- Optical studies of two stripped envelope supernovae SN 2015ap (Type Ib) and SN 2016P (Type Ic)
- SN 2015as: A low luminosity Type IIb supernova without an early light curve peak
- NERO - A Post Maximum Supernova Radiation Transport Code
- Early formation of carbon monoxide in the Centaurus A supernova SN 2016adj
- Characterizing the Rapid Hydrogen Disappearance in SN2022crv: Evidence of a Continuum between Type Ib and IIb Supernova Properties
- Observational properties of a Type Ib Supernova MASTER OT J120451.50+265946.6 in NGC 4080
- Characterization of Supernovae Based on the Spectral-Temporal Energy Distribution: Possible two SN Ib Subtypes
- The fast evolving type Ib Supernova SN 2015dj in NGC 7371
- SN 2022ngb: A faint, slowly evolving Type IIb supernova with a low-mass envelope