A Systematic Study Of Superluminous Supernova Lightcurve Models Using Clustering
arXiv:1902.09484 · doi:10.3847/1538-4357/ab0ae6
Abstract
Superluminous supernova (SLSN) lightcurves exhibit a superior diversity compared to their regular luminosity counterparts in terms of rise and decline timescales, peak luminosities and overall shapes. It remains unclear whether this striking variety arises due to a dominant power input mechanism involving many underlying parameters, or due to contributions by different progenitor channels. In this work, we propose that a systematic quantitative study of SLSN lightcurve timescales and shape properties, such as symmetry around peak luminosity, can be used to characterize these enthralling stellar explosions. We find that applying clustering analysis on the properties of model SLSN lightcurves, powered by either a magnetar spin-down or a supernova ejecta-circumstellar interaction mechanism, can yield a distinction between the two, especially in terms of lightcurve symmetry. We show that most events in the observed SLSN sample with well-constrained lightcurves and early detections strongly associate with clusters dominated by circumstellar interaction models. Magnetar spin-down models also show association at a lower degree but have difficulty in reproducing fast-evolving and fully symmetric lightcurves. We believe this is due to the truncated nature of the circumstellar interaction shock energy input as compared to decreasing but continuous power input sources like magnetar spin-down and radioactive Ni-56 decay. Our study demonstrates the importance of clustering analysis in characterizing SLSNe based on high-cadence photometric observations that will be made available in the near future by surveys like LSST, ZTF and Pan-STARRS.
22 pages, 9 figures
References in corpus (21)
- The Zwicky Transient Facility: System Overview, Performance, and First Results
- Pulsational Pair-Instability Supernovae
- Pulsational pair instability as an explanation for the most luminous supernovae
- The R136 star cluster hosts several stars whose individual masses greatly exceed the accepted 150 Msun stellar mass limit
- The magnetar model for Type I superluminous supernovae I: Bayesian analysis of the full multicolour light curve sample with MOSFiT
- SN 2005ap: A Most Brilliant Explosion
- SN 2006tf: Precursor Eruptions and the Optically Thick Regime of Extremely Luminous Type IIn Supernovae
- The Broad-lined Type Ic SN 2003jd
- Shell-shocked diffusion model for the light curve of SN2006gy
- Super-luminous supernovae at redshifts of 2.05 and 3.90
- Light Curve Modeling of Superluminous Supernova 2006gy: Collision between Supernova Ejecta and Dense Circumstellar Medium
- Pair creation supernovae at low and high redshift
- Relativistic MHD Winds from Rotating Neutron Stars
- Numerical simulations of super-luminous supernovae of type IIn
- Hydrogen-Poor Superluminous Supernovae from the Pan-STARRS1 Medium Deep Survey
- The hydrogen-poor superluminous supernova iPTF13ajg and its host galaxy in absorption and emission
- Observational properties of low redshift pair instability supernovae
- Pair-Instability Supernova Simulations: Progenitor Evolution, Explosion, and Light Curves
- Circumstellar Interaction Models for the Bolometric Light Curve of SN 2017egm
- Magnetar-Powered Supernovae in Two Dimensions. II. Broad-Line Supernovae Ic
- A fast version of the k-means classification algorithm for astronomical applications