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Multi-Phase Shock Cooling Emission in Ultra-Stripped Supernovae

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arxiv 2503.08790 v1 pith:UVCLKV55 submitted 2025-03-11 astro-ph.HE astro-ph.SR

classification astro-ph.HEastro-ph.SR
keywords massenvelopematerialmodelscoolingcurvesemissionevents
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abstract

Ultra-stripped and Type Ibn supernovae (USSNe and SNe Ibn, respectively) are fast-evolving, hydrogen-poor transients that often show signs of interaction with dense circumstellar material (CSM). Wu & Fuller (2022) identify a mass range for helium-core stars in which they expand significantly during core oxygen/neon burning, resulting in extreme late-stage mass loss in tight binaries ($P\sim1-100\,{\rm days}$). Here we explore the resulting light curves from a subset of models from Wu & Fuller (2022) and find that in some cases they can exhibit two phases of shock cooling emission (SCE). The first SCE is attributed to the circumbinary material, and the second SCE is from the extended helium-burning envelope of the exploding star. Since SCE luminosity is roughly proportional to the initial radius of the emitting material, events that exhibit both phases of SCE provide the exciting opportunity of measuring both the extent of the CSM and the radius of the exploding star. These light curves are explored with both analytic arguments and numerical modeling, and from this we identify the parameter space of CSM mass, helium envelope mass, and nickel mass, for which the helium envelope SCE will be visible. We provide a qualitative comparison of these models to two fast-evolving, helium-rich transients, SN2019kbj and SN2019dge. The similarity between these events and our models demonstrates that this extreme binary mass loss mechanism may explain some SNe Ibn and USSNe.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. White Dwarf Kicks via Episodic Mass Ejection from Red Giant Stars

    astro-ph.SR 2026-08 conditional novelty 7.0 of 10

    Episodic, asymmetric mass loss from red giants yields a random-walk accumulation of small kicks that explains white dwarf kick velocities and the disruption of wide binaries.

  2. Population Synthesis Study on the Binary Origin of Type Ibn Supernovae

    astro-ph.SR 2025-06 conditional novelty 7.0 of 10

    Binary population synthesis shows low-mass helium stars in close binaries can account for the observed Type Ibn supernova rate, but He star compact object mergers cannot.

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