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arXiv · 2607.25323

SN 2022xus: bridging the gap between Type IIP and IIL supernovae

Abstract

We present optical photometric and spectroscopic observations of the Type~II supernova SN~2022xus. The SN reached its peak {\em V} band magnitude of $-16.32$ mag within $\sim$7 days of explosion, followed by a plateau phase lasting $\sim$94 days with a declination rate of $\sim$1.2 mag (100 day)$^{-1}$. Early time spectra exhibit broad features that could be caused by the blending of several high-ionisation lines, likely arising from a relatively weak interaction between the SN ejecta and the surrounding circumstellar medium (CSM). Compared to typical Type~IIP SNe, SN~2022xus exhibits a smaller H$\alpha$ absorption-to-emission ratio ($a/e$), indicating a relatively small hydrogen envelope mass at the time of explosion. From nebular-phase spectroscopy and bolometric light curve modelling, the progenitor mass is estimated to be in the range of 12 -- 15 M$_\odot$. The multi-band light curve modelling using \texttt{REDBACK} infers a similar progenitor mass, a low mass-loss rate, and a confined CSM. Although several photometric and spectroscopic characteristics place the SN within the Type~IIL population, it displays mixed properties of both Type~IIP and Type~IIL SNe and cannot be cleanly classified into either subclass. We therefore identify SN~2022xus as a transitional event between Type~IIP and Type~IIL SNe, providing further evidence for a continuum between these two classes.

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Monalisa Dubey, Kuntal Misra, Naveen Dukiya, Kumar Pranshu, Raya Dastidar, K. Azalee Bostroem, Yize Dong, Joseph R. Farah, Estefania Padilla Gonzalez, Emily Hoang, D. Andrew Howell, Curtis McCully, Megan Newsome, Craig Pellegrino, Aravind Pazhayath Ravi, Nicolas Meza Retamal, Ajay Kumar Singh, Giacomo Terreran, Stefano Valenti. 2026-07-28. SN 2022xus: bridging the gap between Type IIP and IIL supernovae. https://arxiv.org/abs/2607.25323

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