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arXiv · 1801.01532

SN2013fs and SN2013fr: Exploring the circumstellar-material diversity in Type II supernovae

Abstract

We present photometry and spectroscopy of SN2013fs and SN2013fr in the first 100 days post-explosion. Both objects showed transient, relatively narrow H$\alpha$ emission lines characteristic of SNeIIn, but later resembled normal SNeII-P or SNeII-L, indicative of fleeting interaction with circumstellar material (CSM). SN2013fs was discovered within 8hr of explosion. Its light curve exhibits a plateau, with spectra revealing strong CSM interaction at early times. It is a less luminous version of the transitional SNIIn PTF11iqb, further demonstrating a continuum of CSM interaction intensity between SNeII-P and IIn. It requires dense CSM within 6.5$\times$10$^{14}$~cm of the progenitor, from a phase of advanced pre-SN mass loss shortly before explosion. Spectropolarimetry of SN2013fs shows little continuum polarization, but noticeable line polarization during the plateau phase. SN2013fr morphed from a SNIIn at early times to a SNII-L. After the first epoch its narrow lines probably arose from host-galaxy emission, but the bright, narrow H$\alpha$ emission at early times may be intrinsic. As for SN2013fs, this would point to a short-lived phase of strong CSM interaction if proven to be intrinsic, suggesting a continuum between SNeIIn and II-L. It is a low-velocity SNII-L, like SN2009kr but more luminous. SN2013fr also developed an IR excess at later times, due to warm CSM dust that require a more sustained phase of strong pre-SN mass loss.

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Christopher Bullivant, Nathan Smith, G. Grant Williams, Jon C. Mauerhan, Jennifer E. Andrews, Wen-Fai Fong, Christopher Bilinski, Charles D. Kilpatrick, Peter A. Milne, Ori D. Fox, S. Bradley Cenko, Alexei V. Filippenko, WeiKang Zheng, Patrick L. Kelly, Kelsey I. Clubb. 2018-01-04. SN2013fs and SN2013fr: Exploring the circumstellar-material diversity in Type II supernovae. https://doi.org/10.1093/mnras/sty045

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