A JWST/MIRI Study of Dust in a Sample of Normal Type IIP Core Collapse Supernovae
Bhagya M. Subrayan, David J. Sand, Olivia Culbert, Jennifer E. Andrews, Jeniveve Pearson, Griffin Hosseinzadeh, Saurabh W. Jha, Stefano Valenti, K. Azalee Bostroem, Conor L. Ransome, Aravind P. Ravi, Aysha Aamer, Moira Andrews, Emma R. Beasor, Collin Christy, Yize Dong, Noah Franz, Emily Hoang, Brian Hsu, Jacob Jencson, Lindsey A. Kwok, M. J. Lundquist, Darshana Mehta, Nicolas Meza Retamal, Manisha Shrestha, Nathan Smith, Sergiy Vasylyev
Abstract
Core collapse supernovae (CCSNe) are invoked as major dust producers in the early Universe, yet the amount of dust they form, the timescale over which it grows, and the physical conditions that regulate the yield remain uncertain. We present a detailed JWST/MIRI mid-infrared (MIR) imaging census of 11 nearby Type IIP CCSNe spanning 1-7 yr after explosion, investigating dust emission across the different phases of their evolution. The spectral energy distributions show a coherent evolution from hot (1500 K), 5-8 μm emission at 400 d to prominent 10 and 18 μm emission features at later epochs (600-2500 d). The cool dust temperatures range from 120 to 250 K and dust masses from 10-4 to 10-2 M. The current sample shows no statistically significant correlation between measured dust mass and peak luminosity, plateau duration, or explosion energy. SNe with early high ionization features, indicative of confined CSM, are often among the dust-rich objects in the sample. The measured 1-7 yr dust yields are insufficient to account for dust in typical z > 6 galaxies, but support a role for CCSNe as producers of seed dust for subsequent grain growth.
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