A reddening-free method to estimate the Ni mass of Type Ia supernovae
arXiv:1601.04874 · doi:10.1051/0004-6361/201527201
Abstract
The increase in the number of Type Ia supernovae (SNe\,Ia) has demonstrated that the population shows larger diversity than has been assumed in the past. The reasons (e.g. parent population, explosion mechanism) for this diversity remain largely unknown. We have investigated a sample of SNe\,Ia near-infrared light curves and have correlated the phase of the second maximum with the bolometric peak luminosity. The peak bolometric luminosity is related to the time of the second maximum (relative to the {\it B} light curve maximum) as follows : . Ni masses can be derived from the peak luminosity based on Arnett's rule, which states that the luminosity at maximum is equal to instantaneous energy generated by the nickel decay. We check this assumption against recent radiative-transfer calculations of Chandrasekhar-mass delayed detonation models and find this assumption is valid to within 10\% in recent radiative-transfer calculations of Chandrasekhar-mass delayed detonation models. The vs. relation is applied to a sample of 40 additional SNe\,Ia with significant reddening ( 0.1 mag) and a reddening-free bolometric luminosity function of SNe~Ia is established. The method is tested with the Ni mass measurement from the direct observation of rays in the heavily absorbed SN 2014J and found to be fully consistent. Super-Chandrasekhar-mass explosions, in particular SN\,2007if, do not follow the relations between peak luminosity and second IR maximum. This may point to an additional energy source contributing at maximum light. The luminosity function of SNe\,Ia is constructed and is shown to be asymmetric with a tail of low-luminosity objects and a rather sharp high-luminosity cutoff, although it might be influenced by selection effects.
9 pages, 3 figures, Accepted to A&A
References in corpus (15)
- A Common Explosion Mechanism for Type Ia Supernovae
- Secondary Maximum in the Near-Infrared Lightcurves of Type Ia Supernovae
- The Carnegie Supernova Project: Intrinsic Colors of Type Ia Supernovae
- Optical and Near-Infrared Observations of the Highly Reddened, Rapidly Expanding Type Ia Supernova 2006X in M100
- Anomalous extinction behaviour towards the Type Ia SN 2003cg
- Consistent estimates of (56)Ni yields for type Ia supernovae
- The rise of SN2014J in the nearby galaxy M82
- No X-rays from the very nearby Type Ia SN2014J: constraints on its environment
- Optical and IR observations of SN 2002dj: some possible common properties of fast expanding SNe Ia
- SN2014J gamma-rays from the 56Ni decay chain
- The colour-lightcurve shape relation of Type Ia supernovae and the reddening law
- Properties of extragalactic dust inferred from linear polarimetry of Type Ia Supernovae
- Constraints on the origin of the first light from SN2014J
- Spectral modelling of the "Super-Chandra" Type Ia SN 2009dc - testing a 2 M_sun white dwarf explosion model and alternatives
- Near-infrared light curves of Type Ia supernovae: Studying the properties of the second maximum
Cited by in corpus (17)
- Nucleosynthesis in thermonuclear supernovae
- Early Observations of the Type Ia Supernova iPTF 16abc: A Case of Interaction with Nearby, Unbound Material and/or Strong Ejecta Mixing
- Type Ia supernovae within dense carbon-oxygen rich envelopes: a model for 'Super-Chandrasekhar' explosions?
- The Carnegie Chicago Hubble Program X: Tip of the Red Giant Branch Distances to NGC 5643 and NGC 1404
- ejecta in young supernova remnants
- Two classes of fast-declining type Ia supernovae
- Cosmic nucleosynthesis: a multi-messenger challenge
- Nebular spectroscopy of SN 2014J: Detection of stable nickel in near infrared spectra
- iPTF16abc and the population of Type Ia supernovae: Comparing the photospheric, transitional and nebular phases
- Optical and Near-Infrared Observations of the Nearby Type Ia Supernova 2017cbv
- Constraints on the physical properties of Type Ia supernovae from photometry
- Characterising the secondary maximum in the r-band for Type Ia Supernovae: Diagnostic for the ejecta mass
- Standardizing Type Ia supernovae using Near Infrared rebrightening time
- Initial 56Ni Masses in Type Ia Supernovae
- Recovered SN Ia rate from simulated LSST images
- ZTF SN Ia DR2: The secondary maximum in Type Ia supernovae
- Radioactive Decay