An analysis of the spectroscopic signatures of layering in the ejecta of type Iax supernovae
arXiv:2110.12294 · doi:10.1093/mnras/stab3123
Abstract
Investigations of some type Iax supernovae have led to the suggestion that their ejecta must be layered to some degree. Such an ejecta structure has been argued as inconsistent with the well-mixed composition predicted by pure deflagrations. Based on explosion models, we create toy models in which the ejecta are artificially stratified and progressively mixed until a uniform composition is obtained. We find that models that are heavily mixed, containing burned and unburned material at all velocities, produce reasonably good agreement with SN 2012Z, for which a layered structure has been suggested. We also discuss how existing ejecta compositions determined for type Iax supernovae do not necessarily contradict pure deflagration models and may be consistent with a steeper density profile. We investigate previous claims that differences in line profile shapes may be due to strong blending, by presenting a series of models with different plasma states. These models indicate that blending could indeed explain differences in the observed profiles. Alternatively, stratification could also explain such differences, however all of our models indicate that this does not necessarily require stratification in abundance. Sufficient stratification in ionisation state can be achieved even for a well-mixed model. Based on our analysis, we demonstrate that there is insufficient evidence to suggest the ejecta of type Iax supernovae must be layered and therefore argue the pure deflagration scenario is not ruled out, even for the brightest type Iax supernovae. Our analysis does not indicate the ejecta cannot be layered to some degree, but observations within days of explosion are necessary to determine the extent to which the outer ejecta could be layered.
19 pages, 12 figures, 8 tables. Accepted for publication in MNRAS
References in corpus (17)
- A kilonova as the electromagnetic counterpart to a gravitational-wave source
- Determining the Type, Redshift, and Age of a Supernova Spectrum
- Identification of strontium in the merger of two neutron stars
- The Spectroscopic Diversity of Type Ia Supernovae
- Secondary Maximum in the Near-Infrared Lightcurves of Type Ia Supernovae
- The Peculiar SN 2005hk: Do Some Type Ia Supernovae Explode as Deflagrations?
- Late-Time Spectroscopy of SN 2002cx: The Prototype of a New Subclass of Type Ia Supernovae
- Deflagrations in hybrid CONe white dwarfs: a route to explain the faint Type Iax supernova 2008ha
- Comprehensive Observations of the Bright and Energetic Type Iax SN 2012Z: Interpretation as a Chandrasekhar Mass White Dwarf Explosion
- The evolution of the peculiar Type Ia supernova SN 2005hk over 400 days
- Spectropolarimetry of the Peculiar Type Ia SN 2005hk
- Early light curves for Type Ia supernova explosion models
- Possible Detection of the Stellar Donor or Remnant for the Type Iax Supernova 2008ha
- Asymmetric Explosion of Type Ia Supernovae as Seen from Near Infrared Observations
- Abundance Tomography of Type Iax SN 2011ay with TARDIS
- SN 2019muj -- a well-observed Type Iax supernova that bridges the luminosity gap of the class
- Detecting the signatures of helium in type Iax supernovae
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