A UV Resonance Line Echo from a Shell Around a Hydrogen-Poor Superluminous Supernova
Abstract
Hydrogen-poor superluminous supernovae (SLSN-I) are a class of rare and energetic explosions discovered in untargeted transient surveys in the past decade. The progenitor stars and the physical mechanism behind their large radiated energies ( erg) are both debated, with one class of models primarily requiring a large rotational energy, while the other requires very massive progenitors to either convert kinetic energy into radiation via interaction with circumstellar material (CSM), or engender a pair-instability explosion. Observing the structure of the CSM around SLSN-I offers a powerful test of some scenarios, though direct observations are scarce. Here, we present a series of spectroscopic observations of the SLSN-I iPTF16eh, which reveal both absorption and time- and frequency-variable emission in the Mg II resonance doublet. We show that these observations are naturally explained as a resonance scattering light echo from a circumstellar shell. Modeling the evolution of the emission, we find a shell radius of 0.1 pc and velocity of 3300 km s, implying the shell was ejected three decades prior to the supernova explosion. These properties match theoretical predictions of pulsational pair-instability shell ejections, and imply the progenitor had a He core mass of , corresponding to an initial mass of .
Cite
@article{arxiv.1808.04887,
title = {A UV Resonance Line Echo from a Shell Around a Hydrogen-Poor Superluminous Supernova},
author = {R. Lunnan and C. Fransson and P. M. Vreeswijk and S. E. Woosley and G. Leloudas and D. A. Perley and R. M. Quimby and Lin Yan and N. Blagorodnova and B. D. Bue and S. B. Cenko and A. De Cia and D. O. Cook and C. U. Fremling and P. Gatkine and A. Gal-Yam and M. M. Kasliwal and S. R. Kulkarni and F. J. Masci and P. E. Nugent and A. Nyholm and A. Rubin and N. Suzuki and P. Wozniak},
journal= {arXiv preprint arXiv:1808.04887},
year = {2018}
}
Comments
Accepted. Fixed typo in table header, otherwise unchanged from previous version