Multi-epoch spectropolarimetry for a sample of Type IIn Supernovae: persistent asymmetry in dusty circumstellar material

Author:

Bilinski Christopher1ORCID,Smith Nathan1ORCID,Williams G Grant2ORCID,Smith Paul S1ORCID,Leonard Douglas C3,Hoffman Jennifer L4ORCID,Andrews Jennifer E15,Milne Peter1

Affiliation:

1. Steward Observatory, University of Arizona , 933 N. Cherry Avenue, Tucson AZ 85719 , USA

2. MMT Observatory , Tucson, AZ 85721-0065 , USA

3. Department of Astronomy, San Diego State University , San Diego, CA 92812 , USA

4. Department of Physics & Astronomy, University of Denver , 2112 East Wesley Avenue, Denver, CO 80208 , USA

5. Gemini Observatory , 670 North A‘ohoku Place, Hilo, HI 96720-2700 , USA

Abstract

ABSTRACT We present multi-epoch spectropolarimetry and spectra for a sample of 14 Type IIn supernovae (SNe IIn). We find that after correcting for likely interstellar polarization, SNe IIn commonly show intrinsic continuum polarization of 1–3 per cent at the time of peak optical luminosity, although a few show weaker or negligible polarization. While some SNe IIn have even stronger polarization at early times, their polarization tends to drop smoothly over several hundred days after peak. We find a tendency for the intrinsic polarization to be stronger at bluer wavelengths, especially at early times. While polarization from an electron scattering region is expected to be grey, scattering of SN light by dusty circumstellar material (CSM) may induce such a wavelength-dependent polarization. For most SNe IIn, changes in polarization degree and wavelength dependence are not accompanied by changes in the position angle, requiring that asymmetric pre-SN mass loss had a persistent geometry. While 2–3 per cent polarization is typical, about 30 per cent of SNe IIn have very low or undetected polarization. Under the simplifying assumption that all SN IIn progenitors have axisymmetric CSM (i.e. disc/torus/bipolar), then the distribution of polarization values we observe is consistent with similarly asymmetric CSM seen from a distribution of random viewing angles. This asymmetry has very important implications for understanding the origin of pre-SN mass loss in SNe IIn, suggesting that it was shaped by binary interaction.

Funder

National Science Foundation

University of Arizona

University of Denver

San Diego State University

Heising-Simons Foundation

Jet Propulsion Laboratory

California Institute of Technology

National Aeronautics and Space Administration

Publisher

Oxford University Press (OUP)

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