T. Szalai, R. Könyves-Tóth, A. P. Nagy, D. Hiramatsu, I. Arcavi, A. Bostroem, D. A. Howell, J. Farah, C. McCully, M. Newsome, E. Padilla Gonzalez, C. Pellegrino, G. Terreran, E. Berger, P. Blanchard, S. Gomez, P. Székely, D. Banhidi, I.B. Bíró, I. Csányi, A. Pál, J. Rho, J. Vinko
{"title":"SN 2021aatd的故事:一颗奇特的1987A类超新星,具有早期阶段的光度过剩现象","authors":"T. Szalai, R. Könyves-Tóth, A. P. Nagy, D. Hiramatsu, I. Arcavi, A. Bostroem, D. A. Howell, J. Farah, C. McCully, M. Newsome, E. Padilla Gonzalez, C. Pellegrino, G. Terreran, E. Berger, P. Blanchard, S. Gomez, P. Székely, D. Banhidi, I.B. Bíró, I. Csányi, A. Pál, J. Rho, J. Vinko","doi":"10.1051/0004-6361/202348548","DOIUrl":null,"url":null,"abstract":"There is a growing number of peculiar events that cannot be assigned to any of the main classes. SN 1987A and a handful of similar objects, thought to be explosive outcomes of blue supergiant stars, is one of them: while their spectra closely resemble those of H-rich (IIP) SNe, their light curve (LC) evolution is very different. Here we present the detailed photometric and spectroscopic analysis of SN 2021aatd, a peculiar Type II explosion. While its early-time evolution resembles that of the slowly evolving double-peaked SN 2020faa (although at a lower luminosity scale), after sim 40 days its LC shape becomes similar to that of SN 1987A-like explosions. In addition to comparing LCs, color curves, and spectra of SN 2021aatd to those of SNe 2020faa, 1987A, and other objects, we compared the observed spectra with our own SYN++ models and with the outputs of published radiative transfer models. We also carried out a detailed modeling of the pseudo-bolometric LCs of SNe 2021aatd and 1987A with a self-developed semi-analytical code, assuming a two-component ejecta (core + shell), and involving the rotational energy of a newborn magnetar in addition to radioactive decay. We find that the photometric and the spectroscopic evolution of SN 2021aatd can be well described with the explosion of a sim 15 $M_ blue supergiant star. Nevertheless, SN 2021aatd shows higher temperatures and weaker Na i D and Ba ii lines than SN 1987A, which is instead reminiscent of IIP-like atmospheres. With the applied two-component ejecta model (accounting for decay and magnetar energy), we can successfully describe the bolometric LC of SN 2021aatd, including the first sim 40-day phase showing an excess compared to 87A-like SNe, but being strikingly similar to that of the long-lived SN 2020faa. Nevertheless, finding a unified model that also explains the LCs of more luminous events (e.g., SN 2020faa) is still a matter of debate.","PeriodicalId":505693,"journal":{"name":"Astronomy & Astrophysics","volume":" 4","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-07-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"The story of SN 2021aatd: A peculiar 1987A-like supernova with an early-phase luminosity excess\",\"authors\":\"T. 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引用次数: 0
摘要
越来越多的奇特事件无法归入任何一个主要类别。SN 1987A和一些被认为是蓝超巨星爆炸结果的类似天体就是其中之一:虽然它们的光谱与富含H(IIP)的SNe非常相似,但它们的光曲线(LC)演化却大相径庭。在这里,我们展示了对 SN 2021aatd 这一奇特的 II 型爆发的详细测光和光谱分析。虽然它的早期演化类似于缓慢演化的双峰SN 2020faa(尽管光度尺度较低),但在模拟40天之后,它的光曲线形状变得类似于类似于SN 1987A的爆炸。除了比较 SN 2021aatd 与 SNe 2020faa、1987A 和其他天体的 LCs、颜色曲线和光谱之外,我们还将观测到的光谱与我们自己的 SYN++ 模型以及已发表的辐射传递模型的输出结果进行了比较。我们还用自己开发的半分析代码对SNe 2021aatd和1987A的假测气压低纬度进行了详细建模,假定抛射物由两部分组成(核+壳),除了放射性衰变外,还涉及新生磁星的旋转能量。我们发现,SN 2021aatd 的光度和光谱演化可以很好地用一颗模拟 15 $M_ 蓝超巨星的爆炸来描述。然而,与SN 1987A相比,SN 2021aatd显示出更高的温度和更弱的Na i D和Ba ii线,这反而让人联想到类似于IIP的大气层。利用所应用的双组分喷出物模型(考虑衰变和磁星能量),我们可以成功地描述SN 2021aatd的测爆 LC,包括与类似于87A的SNe相比出现过剩的第一个模拟40天阶段,但与长寿命SN 2020faa的测爆 LC惊人地相似。尽管如此,找到一个统一的模型来解释更高亮度事件(如SN 2020faa)的低亮度仍是一个值得讨论的问题。
The story of SN 2021aatd: A peculiar 1987A-like supernova with an early-phase luminosity excess
There is a growing number of peculiar events that cannot be assigned to any of the main classes. SN 1987A and a handful of similar objects, thought to be explosive outcomes of blue supergiant stars, is one of them: while their spectra closely resemble those of H-rich (IIP) SNe, their light curve (LC) evolution is very different. Here we present the detailed photometric and spectroscopic analysis of SN 2021aatd, a peculiar Type II explosion. While its early-time evolution resembles that of the slowly evolving double-peaked SN 2020faa (although at a lower luminosity scale), after sim 40 days its LC shape becomes similar to that of SN 1987A-like explosions. In addition to comparing LCs, color curves, and spectra of SN 2021aatd to those of SNe 2020faa, 1987A, and other objects, we compared the observed spectra with our own SYN++ models and with the outputs of published radiative transfer models. We also carried out a detailed modeling of the pseudo-bolometric LCs of SNe 2021aatd and 1987A with a self-developed semi-analytical code, assuming a two-component ejecta (core + shell), and involving the rotational energy of a newborn magnetar in addition to radioactive decay. We find that the photometric and the spectroscopic evolution of SN 2021aatd can be well described with the explosion of a sim 15 $M_ blue supergiant star. Nevertheless, SN 2021aatd shows higher temperatures and weaker Na i D and Ba ii lines than SN 1987A, which is instead reminiscent of IIP-like atmospheres. With the applied two-component ejecta model (accounting for decay and magnetar energy), we can successfully describe the bolometric LC of SN 2021aatd, including the first sim 40-day phase showing an excess compared to 87A-like SNe, but being strikingly similar to that of the long-lived SN 2020faa. Nevertheless, finding a unified model that also explains the LCs of more luminous events (e.g., SN 2020faa) is still a matter of debate.