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A shock crashing into confined dense circumstellar matter brightens the nascent SN 2023ixf
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Red supergiants may experience a short-lived period of episodic mass loss rather than steady winds before their core collapses, leading to dense circumstellar matter (CSM) close to core-collapse supernovae (SNe). Interaction of SN ejecta with such nearby CSM can generate additional radiation, appending to the cooling radiation from the shock breakout of the progenitor envelope, to brighten the nascent SN explosion. This phenomenon is conspicuous for SN 2023ixf as its V-band brightness showed a rapid increase of about three magnitudes from the first to the third day after the explosion, which is distinctive among type II SNe with flash ionized signatures. In this paper, we employ a Monte Carlo method to simulate the radiative diffusion process in the unshocked CSM. Considering a wide range of mass-loss rates from 10^-5 to 10^-2 Msun/yr, we confirmed that the fast-rising light curve of SN 2023ixf can be fitted by the interaction of the SN ejecta with a CSM having a mass-loss rate of about 10^-2 Msun/yr located within 10^15 cm to the progenitor.
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Cited by 3 Pith papers
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Early-time millimeter observations of the nearby Type II SN 2024ggi
Deep ALMA non-detections of SN 2024ggi, combined with flash-spectroscopy evidence, favor a pre-explosion eruptive mass-loss rate near 5e-3 solar masses per year over a steady wind.
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Signatures of the Shock Interaction as an Additional Power Source in the Nebular Spectra of SN 2023ixf
The +363-day spectrum of SN 2023ixf shows broad H-alpha components at about plus and minus 5650 km/s, interpreted as shock interaction with a distant circumstellar shell with at least 5e40 erg/s of shock power.
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SN 2023ixf: The Closest Supernova of the Decade
SN 2023ixf is a type II supernova that exploded inside dense, confined circumstellar material lost by its red supergiant progenitor in the final years before explosion, as established by synthesizing over 80 published...
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