Eruptive mass loss less than a year before the explosion of superluminous supernovae. II. A systematic search for pre-explosion eruptions with VLT/X-shooter
arXiv:2510.11799 · doi:10.1051/0004-6361/202557673
Abstract
We present X-shooter observations of a sample of 21 hydrogen-poor superluminous supernovae (SLSNe-I), spanning a redshift range of z=0.13-0.95, aimed at searching for shells of circumstellar material (CSM). Specifically, we focus on identifying broad Mg II absorption features that are blueshifted by several thousand kilometers per second and have previously been interpreted as arising from resonance line scattering of the SLSN continuum by rapidly expanding CSM ejected shortly before explosion. Utilizing high-quality spectra, we model the region around 2800A to characterize the Mg II line profiles, enabling us to either confirm their presence or place constraints on undetected CSM shells. We identify five objects in our sample that show broad Mg II absorption features consistent with the presence of CSM. While SN2018ibb, SN2020xga and SN2022xgc have been previously reported, we identify previously undiscovered CSM shells in DES15S2nr and DES16C3ggu. These shells were likely expelled approximately two and three months, respectively, before the explosion of their associated SNe, timescales consistent with late-stage mass-loss episodes. We do not find any correlations between the shell properties and the SN properties, except for a marginal correlation between the light curve decline time scale and the shell velocities. We further demonstrate that CSM configurations similar to the majority of the detected shells would have been observable in spectra with signal-to-noise >8 per resolution element, and that the lines from a shell are in general detectable except in the cases where the shell is either very geometrically and/or optically thin. Therefore, we conclude that the detection of CSM shells is not a selection effect, but may instead point to the existence of a subclass of SLSNe-I undergoing late-stage shell ejections shortly before explosion.
16 pages, 9 + 12 figures. Published at A&A on 19 March 2026
References in corpus (36)
- Binary interaction dominates the evolution of massive stars
- The Zwicky Transient Facility: System Overview, Performance, and First Results
- The Zwicky Transient Facility: Data Processing, Products, and Archive
- The Zwicky Transient Facility: Science Objectives
- Pulsational Pair-Instability Supernovae
- Pulsational pair instability as an explanation for the most luminous supernovae
- Mass loss from hot massive stars
- Design and operation of the ATLAS Transient Science Server
- The Zwicky Transient Facility: Observing System
- Effects of rotation on the evolution of primordial stars
- Different to the core: the pre-supernova structures of massive single and binary-stripped stars
- The expansion of stripped-envelope stars: consequences for supernovae and gravitational-wave progenitors
- Hydrogen-Poor Superluminous Supernovae from the Pan-STARRS1 Medium Deep Survey
- The hydrogen-poor superluminous supernova iPTF13ajg and its host galaxy in absorption and emission
- A Blast Wave from the 1843 Eruption of Eta Carinae
- Predictions for the hydrogen-free ejecta of pulsational pair-instability supernovae
- The Hydrogen-Poor Superluminous Supernovae from the Zwicky Transient Facility Phase-I Survey: I. Light Curves and Measurements
- The Hydrogen-Poor Superluminous Supernovae from the Zwicky Transient Facility Phase-I Survey: II. Light Curve Modeling and Characterization of Undulations
- Bumpy Declining Light Curves Are Common in Hydrogen-poor Superluminous Supernovae
- Carinae's Dusty Homunculus Nebula from Near-Infrared to Submillimeter Wavelengths: Mass, Composition, and Evidence for Fading Opacity
- Mass and metallicity scaling relations of high redshift star-forming galaxies selected by GRBs
- The Carnegie Supernova Project II. The shock wave revealed through the fog: The strongly interacting Type IIn SN 2013L
- Pulsational Pair-Instability Model for Superluminous Supernova PTF12dam: Interaction and Radioactive Decay
- SN 2018bsz: a Type I superluminous supernova with aspherical circumstellar material
- SN2020qlb: A hydrogen-poor superluminous supernova with well-characterized light curve undulations
- A cosmic formation site of silicon and sulphur revealed by a new type of supernova explosion
- SN 2021adxl: A luminous nearby interacting supernova in an extremely low metallicity environment
- The landscape of binary core-collapse supernova progenitors and the late emergence of Wolf-Rayet winds
- The mass distribution of stars stripped in binaries: The effect of metallicity
- Fast Ejecta Resulted from Jet-Wind Interaction in the Great Eruption of Eta Carinae
- A Precursor Plateau and Pre-Maximum [O II] Emission in the Superluminous SN2019szu: A Pulsational Pair-Instability Candidate
- SN 2020zbf: A fast-rising hydrogen-poor superluminous supernova with strong carbon lines
- Eruptive mass loss less than a year before the explosion of superluminous supernovae: I. The cases of SN 2020xga and SN 2022xgc
- Pulsations change the structures of massive stars before explosion: interpreting SN 2023ixf and SN 2024ggi
- Rotational Dynamics in Pulsational Pair-Instability Supernovae: Implications for Mass-Loss and Transient Events
- JWST Detection of Hydrocarbon Ices and Methane Gas on Makemake