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  Early-time Ultraviolet and Optical Hubble Space Telescope Spectroscopy of the Type II Supernova 2022wsp

Vasylyev, S. S., Vogl, C., Yang, Y., Filippenko, A. V., Brink, T. G., Brown, P. J., et al. (2023). Early-time Ultraviolet and Optical Hubble Space Telescope Spectroscopy of the Type II Supernova 2022wsp. Astrophysical Journal, Letters, 959(2): L26. doi:10.3847/2041-8213/ad0e6b.

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Vasylyev, Sergiy S., Author
Vogl, Christian1, Author           
Yang, Yi, Author
Filippenko, Alexei V., Author
Brink, Thomas G., Author
Brown, Peter J., Author
Matheson, Thomas, Author
Modjaz, Maryam, Author
Gal-Yam, Avishay, Author
Mazzali, Paolo A.1, Author           
de Jaeger, Thomas, Author
Patra, Kishore C., Author
Stewart, Gabrielle E., Author
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1Stellar Astrophysics, MPI for Astrophysics, Max Planck Society, ou_159882              

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 Abstract: We report early-time ultraviolet (UV) and optical spectroscopy of the young, nearby Type II supernova (SN) 2022wsp obtained by the Hubble Space Telescope (HST)/STIS at about 10 and 20 days after the explosion. The SN 2022wsp UV spectra are compared to those of other well-observed Type II/IIP SNe, including the recently studied Type IIP SN 2021yja. Both SNe exhibit rapid cooling and similar evolution during early phases, indicating a common behavior among SNe II. Radiative-transfer modeling of the spectra of SN 2022wsp with the TARDIS code indicates a steep radial density profile in the outer layer of the ejecta, a solar metallicity, and a relatively high total extinction of E(B − V) = 0.35 mag. The early-time evolution of the photospheric velocity and temperature derived from the modeling agree with the behavior observed from other previously studied cases. The strong suppression of hydrogen Balmer lines in the spectra suggests interaction with a preexisting circumstellar environment could be occurring at early times. In the SN 2022wsp spectra, the absorption component of the Mg ii P Cygni profile displays a double-trough feature on day +10 that disappears by day +20. The shape is well reproduced by the model without fine-tuning the parameters, suggesting that the secondary blueward dip is a metal transition that originates in the SN ejecta.

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Language(s): eng - English
 Dates: 2023-12-20
 Publication Status: Published online
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 Rev. Type: Peer
 Identifiers: DOI: 10.3847/2041-8213/ad0e6b
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Title: Astrophysical Journal, Letters
  Other : ApJL
Source Genre: Journal
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Publ. Info: Bristol, UK : Institute of Physics Publishing (IOP)
Pages: - Volume / Issue: 959 (2) Sequence Number: L26 Start / End Page: - Identifier: ISSN: 0004-637X
CoNE: https://pure.mpg.de/cone/journals/resource/954922828215_1