Twin peaks: SN 2021uvy and SN 2022hgk in the landscape of double-peaked stripped envelope supernovae

Fuente: arXiv
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Auteurs principaux: Sharma, Yashvi, Sollerman, Jesper, Meynardie, William, Fremling, Christoffer, Das, Kaustav K., Yun, Gene, Kulkarni, Shrinivas R., Schulze, Steve, Wise, Jacob, Brennan, Seán. J., Brink, Thomas G., Coughlin, Michael W., Dekany, Richard, Graham, Matthew J., Hinds, K. R., Karambelkar, Viraj, Kasliwal, Mansi M., Li, Maggie L., Nolan, Kira, Perley, Daniel A., Purdum, Josiah N., Rose, Sam, Rusholme, Ben, Sit, Tawny, Tzanidakis, Anastasios, Wold, Avery, Yan, Lin, Yao, Yuhan
Format: Preprint
Publié: 2025
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author Sharma, Yashvi
Sollerman, Jesper
Meynardie, William
Fremling, Christoffer
Das, Kaustav K.
Yun, Gene
Kulkarni, Shrinivas R.
Schulze, Steve
Wise, Jacob
Brennan, Seán. J.
Brink, Thomas G.
Coughlin, Michael W.
Dekany, Richard
Graham, Matthew J.
Hinds, K. R.
Karambelkar, Viraj
Kasliwal, Mansi M.
Li, Maggie L.
Nolan, Kira
Perley, Daniel A.
Purdum, Josiah N.
Rose, Sam
Rusholme, Ben
Sit, Tawny
Tzanidakis, Anastasios
Wold, Avery
Yan, Lin
Yao, Yuhan
author_facet Sharma, Yashvi
Sollerman, Jesper
Meynardie, William
Fremling, Christoffer
Das, Kaustav K.
Yun, Gene
Kulkarni, Shrinivas R.
Schulze, Steve
Wise, Jacob
Brennan, Seán. J.
Brink, Thomas G.
Coughlin, Michael W.
Dekany, Richard
Graham, Matthew J.
Hinds, K. R.
Karambelkar, Viraj
Kasliwal, Mansi M.
Li, Maggie L.
Nolan, Kira
Perley, Daniel A.
Purdum, Josiah N.
Rose, Sam
Rusholme, Ben
Sit, Tawny
Tzanidakis, Anastasios
Wold, Avery
Yan, Lin
Yao, Yuhan
contents In recent years, a class of stripped-envelope supernovae (SESNe) showing two distinct light-curve peaks has emerged, where the first peak cannot be attributed to shock cooling emission. Such peculiar SNe are often studied individually, explained by a combination of powering mechanisms, but are rarely discussed broadly as a group. In this paper, we attempt to form a picture of the landscape of double-peaked SESNe and their powering mechanisms by adding two more objects -- SN 2021uvy and SN 2022hgk. SN 2021uvy is a broad, luminous SN Ib with an unusually long first peak rise and constant color evolution with rising photospheric temperature during the second peak. Though its first peak resembles SN 2019stc, their second peaks differ, making SN 2021uvy unique. SN 2022hgk shows photometric similarity to SN 2019cad and spectroscopic similarity to SN 2005bf, both proposed to be powered by a double-nickel distribution in their ejecta. We analyze their light curves and colors, compare them with a sample of double-peaked SESNe from the ZTF archive, and analyze the light curve parameters of the sample. We observe a correlation (p-value~0.025) between the peak absolute magnitudes of the first and second peaks. No single definitive powering mechanism applies to the whole sample, as it shows variety in the photometric and spectroscopic properties. However, sub-groups of similarity exist that can be explained by mechanisms like the double-nickel distribution, magnetar central engine, interaction, and fallback accretion. We also map out the duration between the peaks ($Δt^{21}$) vs the difference between peak absolute magnitudes ($ΔM^{21}$) as a phase-space that could potentially delineate the most promising powering mechanisms for the double-peaked SESNe.
format Preprint
id arxiv_https___arxiv_org_abs_2507_03822
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Twin peaks: SN 2021uvy and SN 2022hgk in the landscape of double-peaked stripped envelope supernovae
Sharma, Yashvi
Sollerman, Jesper
Meynardie, William
Fremling, Christoffer
Das, Kaustav K.
Yun, Gene
Kulkarni, Shrinivas R.
Schulze, Steve
Wise, Jacob
Brennan, Seán. J.
Brink, Thomas G.
Coughlin, Michael W.
Dekany, Richard
Graham, Matthew J.
Hinds, K. R.
Karambelkar, Viraj
Kasliwal, Mansi M.
Li, Maggie L.
Nolan, Kira
Perley, Daniel A.
Purdum, Josiah N.
Rose, Sam
Rusholme, Ben
Sit, Tawny
Tzanidakis, Anastasios
Wold, Avery
Yan, Lin
Yao, Yuhan
High Energy Astrophysical Phenomena
In recent years, a class of stripped-envelope supernovae (SESNe) showing two distinct light-curve peaks has emerged, where the first peak cannot be attributed to shock cooling emission. Such peculiar SNe are often studied individually, explained by a combination of powering mechanisms, but are rarely discussed broadly as a group. In this paper, we attempt to form a picture of the landscape of double-peaked SESNe and their powering mechanisms by adding two more objects -- SN 2021uvy and SN 2022hgk. SN 2021uvy is a broad, luminous SN Ib with an unusually long first peak rise and constant color evolution with rising photospheric temperature during the second peak. Though its first peak resembles SN 2019stc, their second peaks differ, making SN 2021uvy unique. SN 2022hgk shows photometric similarity to SN 2019cad and spectroscopic similarity to SN 2005bf, both proposed to be powered by a double-nickel distribution in their ejecta. We analyze their light curves and colors, compare them with a sample of double-peaked SESNe from the ZTF archive, and analyze the light curve parameters of the sample. We observe a correlation (p-value~0.025) between the peak absolute magnitudes of the first and second peaks. No single definitive powering mechanism applies to the whole sample, as it shows variety in the photometric and spectroscopic properties. However, sub-groups of similarity exist that can be explained by mechanisms like the double-nickel distribution, magnetar central engine, interaction, and fallback accretion. We also map out the duration between the peaks ($Δt^{21}$) vs the difference between peak absolute magnitudes ($ΔM^{21}$) as a phase-space that could potentially delineate the most promising powering mechanisms for the double-peaked SESNe.
title Twin peaks: SN 2021uvy and SN 2022hgk in the landscape of double-peaked stripped envelope supernovae
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2507.03822