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arXiv · 2608.10451

JWST Spectroscopy of Type Ia Supernova 2025rbs from Maximum Light to the Nebular Phase

Abstract

We present JWST observations of the Type Ia supernova (SN Ia) 2025rbs ($D=$14.5 Mpc) at +1, +23, and +84 days after B-band maximum, spanning peak light through a wavelength-dependent transition toward the nebular phase. Combined with ground-based optical and near-infrared (NIR) data, our panchromatic spectra (0.4-14 $\mu$m) include the first maximum-light mid-infrared (MIR) spectrum and the earliest MIR spectroscopic sequence of an SN Ia to date. At peak light, the MIR spectrum exhibits a continuum with permitted and forbidden features, including Si II, Ni II, and early-emerging [Ni III-IV] and [Ar II-III]. By +23 days the MIR is dominated by forbidden lines with a weak continuum, and by +84 days it is fully nebular, whereas the optical/NIR spectra remain transitional. The nebular spectrum reveals strongly stratified ejecta, with stable Ni concentrated at the lowest velocities, radioactive Co at intermediate velocities but absent within ~2000 km s$^{-1}$, and Ar occupying an outer shell. We detect small-scale substructure in [Ca IV] 3.21 $\mu$m with fractional amplitudes of a few percent and a characteristic velocity scale of ~800 km s$^{-1}$, which may reflect compositional structure, ionization variations, or both. Radiative-transfer calculations substantially underpredict these MIR Mg II features despite approximately reproducing the NIR Mg II 1.0927 $\mu$m line, suggesting that the relative strengths of these transitions are sensitive to the treatment of Mg ionization and excitation. These observations demonstrate that MIR spectroscopy beginning near maximum light simultaneously probes the emerging inner ejecta and rapidly fading outer burning products, providing new constraints for explosion and radiative-transfer models.

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Lindsey A. Kwok, Stéphane Blondin, Adam A. Miller, Saurabh W. Jha, Willem B. Hoogendam, Cameron M. Pfeffer, Eyouel Z. Abate, Jennifer E. Andrews, Moira Andrews, Chris Ashall, Katie Auchettl, K. Azalee Bostroem, Thomas G. Brink, Fionntan P. Callan, Collin T. Christy, Joseph R. Farah, Alexei V. Filippenko, Andreas Flörs, Ryan J. Foley, Eli Gendreau-Distler, Or Graur, Jason T. Hinkle, D. Andrew Howell, David O. Jones, Rinon Kageyama, Miho Kawabata, Cristine Koelln, Conor Larison, Chang Liu, Keiichi Maeda, Kate Maguire, Curtis McCully, Kyle Medler, Nicolas E. Meza-Retamal, Ann Mina, Rüdiger Pakmor, Riley Patlak, Jeniveve Pearson, Aravind P. Ravi, Nabeel Rehemtulla, Armin Rest, David J. Sand, Huei Sears, Benjamin J. Shappee, Manisha Shrestha, Mridweeka Singh, Tamás Szalai, Kenta Taguchi, Tea Temim, Jacco H. Terwel, Stefano Valenti, József Vinkó, J. Craig Wheeler, Kathryn Wynn, Yi Yang, WeiKang Zheng. 2026-08-11. JWST Spectroscopy of Type Ia Supernova 2025rbs from Maximum Light to the Nebular Phase. https://arxiv.org/abs/2608.10451

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