An Empirical Fitting Method for Type Ia Supernova Light Curves: A Case Study of SN 2011fe
arXiv:1612.02097 · doi:10.3847/2041-8213/aa6442
Abstract
We present a new empirical fitting method for the optical light curves of Type Ia supernovae (SNe~Ia). We find that a variant broken-power-law function provides a good fit, with the simple assumption that the optical emission is approximately the blackbody emission of the expanding fireball. This function is mathematically analytic and is derived directly from the photospheric velocity evolution. When deriving the function, we assume that both the blackbody temperature and photospheric velocity are constant, but the final function is able to accommodate these changes during the fitting procedure. Applying it to the case study of SN~2011fe gives a surprisingly good fit that can describe the light curves from the first-light time to a few weeks after peak brightness, as well as over a large range of fluxes (\, mag, and even \,mag in the band). Since SNe~Ia share similar light-curve shapes, this fitting method has the potential to fit most other SNe~Ia and characterize their properties in large statistical samples such as those already gathered and in the near future as new facilities become available.
Accepted by ApJL
References in corpus (6)
- Improved Distances to Type Ia Supernovae with Multicolor Light Curve Shapes: MLCS2k2
- The Spectroscopic Diversity of Type Ia Supernovae
- Results from the Supernova Photometric Classification Challenge
- The Rising Light Curves of Type Ia Supernovae
- The Rise and Fall of Type Ia Supernova Light Curves in the SDSS-II Supernova Survey
- The Rise Time of Type Ia Supernovae from the Supernova Legacy Survey