Optical and ultraviolet spectroscopic analysis of SN 2011fe at late times
Abstract
We present optical spectra of the nearby Type Ia supernova SN 2011fe at 100, 205, 311, 349, and 578 days post-maximum light, as well as an ultraviolet spectrum obtained with Hubble Space Telescope at 360 days post-maximum light. We compare these observations with synthetic spectra produced with the radiative transfer code PHOENIX. The day +100 spectrum can be well fit with models which neglect collisional and radiative data for forbidden lines. Curiously, including this data and recomputing the fit yields a quite similar spectrum, but with different combinations of lines forming some of the stronger features. At day +205 and later epochs, forbidden lines dominate much of the optical spectrum formation; however, our results indicate that recombination, not collisional excitation, is the most influential physical process driving spectrum formation at these late times. Consequently, our synthetic optical and UV spectra at all epochs presented here are formed almost exclusively through recombination-driven fluorescence. Furthermore, our models suggest that the ultraviolet spectrum even as late as day +360 is optically thick and consists of permitted lines from several iron-peak species. These results indicate that the transition to the "nebular" phase in Type Ia supernovae is complex and highly wavelength-dependent.
Keywords
Cite
@article{arxiv.1607.04784,
title = {Optical and ultraviolet spectroscopic analysis of SN 2011fe at late times},
author = {Brian Friesen and E. Baron and Jerod T. Parrent and R. C. Thomas and David Branch and Peter Nugent and Peter H. Hauschildt and Ryan J. Foley and Darryl E. Wright and Yen-Chen Pan and Alexei V. Filippenko and Kelsey I. Clubb and Jeffrey M. Silverman and Keiichi Maeda and Isaac Shivvers and Patrick L. Kelly and Daniel P. Cohen and Armin Rest and Daniel Kasen},
journal= {arXiv preprint arXiv:1607.04784},
year = {2017}
}
Comments
22 pages, 21 figuress, 1 table, submitted to MNRAS