Very late-time spectroscopy of SN 2009ip: Constraints on the ongoing H emission
arXiv:2308.07370 · doi:10.1051/0004-6361/202347319
Abstract
The peculiar supernova (SN) 2009ip is an ambiguous event that spurred many questions regarding its true origins. Here, we present very late-time spectroscopic and photometric observations of SN 2009ip, obtained 9 years (3274 days) after the 2012B outburst. We analyze the H emission still present in the very late-time spectrum of SN 2009ip. We also obtain photometric measurements in the , and bands. We obtained observations of SN 2009ip on 2021 September 10 with the IMACS instrument at the 6.5 m Magellan Baade Telescope, located at the Las Campanas Observatory. SN 2009ip was detected in the , and bands, with an absolute magnitude in band of ~mag. We show that the source faded significantly since the last observations in these bands. We further show that the very late-time spectrum contains a persistent H emission, although no other emission lines were detected. We measured a full width at half maximum (FWHM) of and luminosity of for the H emission. The luminosity decreased relatively slowly in comparison to the last observations and its fading rate is very similar to other long-living interacting transients, such as SN 2005ip. Finally, we conclude that although these properties could be consistent with a non-regular core-collapse SN, they may also be explained through non-terminal explosion scenarios.
7 pages, 4 figures, accepted at A&A
References in corpus (7)
- Pulsational Pair-Instability Supernovae
- PTF11iqb: Cool supergiant mass loss that bridges the gap between Type IIn and normal supernovae
- Multi-epoch spectropolarimetry of SN 2009ip: direct evidence for aspherical circumstellar material
- Endurance of SN 2005ip after a decade: X-rays, radio, and H-alpha like SN 1988Z require long-lived pre-supernova mass loss
- Massive stars dying alone: The extremely remote environment of SN 2009ip
- The Slow Demise of the Long-Lived SN 2005ip
- SN 2009ip: Constraining the latest explosion properties by its late-phase light curve