SN 2022acko and the Properties of its Red Supergiant Progenitor: Direct Detection, Light Curves, and Nebular Spectroscopy

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Main Authors: Teixeira, Gabriel, Kilpatrick, Charlie D., Bom, Clécio R., Santos, André, Darc, Phelipe, Auchettl, Katie, Álvarez-Candal, Álvaro, Foley, Ryan J., Humire, Pedro K., Piro, Anthony L., Rojas-Bravo, Cesar, de Oliveira, Claudia Mendes, Kanaan, Antonio, Ribeiro, Tiago, Schoenell, William
Format: Preprint
Published: 2025
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author Teixeira, Gabriel
Kilpatrick, Charlie D.
Bom, Clécio R.
Santos, André
Darc, Phelipe
Auchettl, Katie
Álvarez-Candal, Álvaro
Foley, Ryan J.
Humire, Pedro K.
Piro, Anthony L.
Rojas-Bravo, Cesar
de Oliveira, Claudia Mendes
Kanaan, Antonio
Ribeiro, Tiago
Schoenell, William
author_facet Teixeira, Gabriel
Kilpatrick, Charlie D.
Bom, Clécio R.
Santos, André
Darc, Phelipe
Auchettl, Katie
Álvarez-Candal, Álvaro
Foley, Ryan J.
Humire, Pedro K.
Piro, Anthony L.
Rojas-Bravo, Cesar
de Oliveira, Claudia Mendes
Kanaan, Antonio
Ribeiro, Tiago
Schoenell, William
contents We present ultraviolet, optical, and infrared observations of the Type II-P supernova SN 2022acko in NGC 1300, located at a distance of 19.0 +/- 2.9 Mpc. Our dataset spans 1-350 days post-explosion in photometry, complemented by late-time optical spectroscopy covering 200-600 days, and includes deep pre-explosion imaging. We use this extensive multiwavelength dataset for both direct and indirect constraints on the progenitor system. Using the early-time photometry and shock-cooling models, we infer that SN 2022acko likely originated from a red supergiant with a radius of R ~ 580 solar radii and an initial mass of M ~ 9-10 solar masses. From the radioactive decay tail, we infer a synthesized Ni56 mass of 0.014 +/- 0.004 solar masses. We further model nebular-phase spectra using radiative transfer models and nucleosynthesis yields for core-collapse supernovae, which suggest a progenitor initial mass in the range of 10-15 solar masses. Meanwhile, blackbody fitting of the detected pre-explosion counterpart in the F814W and F160W bands indicates a red supergiant with a lower initial mass of approximately 7.5 solar masses. The light curve exhibits a 116 days plateau, indicative of a massive hydrogen-rich envelope, inconsistent with the pre-explosion analysis. We investigated the discrepancy between direct and indirect progenitor mass estimates, focusing on the roles of binary interaction, early-time modeling limitations, and systematic uncertainties in spectral calibration. Our results indicate that the tension among mass estimates likely arises from modeling limitations and flux calibration uncertainties rather than from insufficient data, highlighting the need for more physically realistic models and a deeper understanding of systematic effects.
format Preprint
id arxiv_https___arxiv_org_abs_2509_04707
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle SN 2022acko and the Properties of its Red Supergiant Progenitor: Direct Detection, Light Curves, and Nebular Spectroscopy
Teixeira, Gabriel
Kilpatrick, Charlie D.
Bom, Clécio R.
Santos, André
Darc, Phelipe
Auchettl, Katie
Álvarez-Candal, Álvaro
Foley, Ryan J.
Humire, Pedro K.
Piro, Anthony L.
Rojas-Bravo, Cesar
de Oliveira, Claudia Mendes
Kanaan, Antonio
Ribeiro, Tiago
Schoenell, William
High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
We present ultraviolet, optical, and infrared observations of the Type II-P supernova SN 2022acko in NGC 1300, located at a distance of 19.0 +/- 2.9 Mpc. Our dataset spans 1-350 days post-explosion in photometry, complemented by late-time optical spectroscopy covering 200-600 days, and includes deep pre-explosion imaging. We use this extensive multiwavelength dataset for both direct and indirect constraints on the progenitor system. Using the early-time photometry and shock-cooling models, we infer that SN 2022acko likely originated from a red supergiant with a radius of R ~ 580 solar radii and an initial mass of M ~ 9-10 solar masses. From the radioactive decay tail, we infer a synthesized Ni56 mass of 0.014 +/- 0.004 solar masses. We further model nebular-phase spectra using radiative transfer models and nucleosynthesis yields for core-collapse supernovae, which suggest a progenitor initial mass in the range of 10-15 solar masses. Meanwhile, blackbody fitting of the detected pre-explosion counterpart in the F814W and F160W bands indicates a red supergiant with a lower initial mass of approximately 7.5 solar masses. The light curve exhibits a 116 days plateau, indicative of a massive hydrogen-rich envelope, inconsistent with the pre-explosion analysis. We investigated the discrepancy between direct and indirect progenitor mass estimates, focusing on the roles of binary interaction, early-time modeling limitations, and systematic uncertainties in spectral calibration. Our results indicate that the tension among mass estimates likely arises from modeling limitations and flux calibration uncertainties rather than from insufficient data, highlighting the need for more physically realistic models and a deeper understanding of systematic effects.
title SN 2022acko and the Properties of its Red Supergiant Progenitor: Direct Detection, Light Curves, and Nebular Spectroscopy
topic High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2509.04707