Please use this identifier to cite or link to this item: http://hdl.handle.net/2248/8589
Title: Unravelling the asphericities in the explosion and multifaceted circumstellar matter of SN 2023ixf
Authors: Singh, Avinash
Teja, Rishabh Singh
Moriya, Takashi J
Maeda, K
Kawabata, K. S
Tanaka, Masaomi
Imazawa, Ryo
Nakaoka, Tatsuya
Gangopadhyay, Anjasha
Yamanaka, Masayuki
Swain, Vishwajeet
Sahu, D. K
Anupama, G. C
Kumar, Brajesh
Anche, Ramya M
Sano, Y
Raj, A
Agnihotri, V. K
Bhalerao, Varun
Bisht, D
Bisht, Mohit Singh
Belwal, Kuldeep
Chakrabarti, S. K
Fujii, Mitsugu
Nagayama, Takahiro
Matsumoto, K
Hamada, Taisei
Kawabata, Miho
Kumar, Amit
Kumar, Ravi
Malkan, Brian K
Smith, Paul
Sakagam, Yuta
Taguchi, Kenta
Tominaga, Nozomu
Watanabe, Arata
Keywords: Core-collapse supernovae
Supernova dynamics
Type II supernovae
Red supergiant stars
Polarimetry
Spectropolarimetry
Issue Date: 1-Nov-2024
Publisher: American Astronomical Society
Citation: The Astrophysical Journal, Vol. 975, No. 1, 132
Abstract: We present a detailed investigation of photometric, spectroscopic, and polarimetric observations of the Type II SN 2023ixf. Earlier studies have provided compelling evidence for a delayed shock breakout from a confined dense circumstellar matter (CSM) enveloping the progenitor star. The temporal evolution of polarization in the SN 2023ixf phase revealed three distinct peaks in polarization evolution at 1.4 days, 6.4 days, and 79.2 days, indicating an asymmetric dense CSM, an aspherical shock front and clumpiness in the low-density extended CSM, and an aspherical inner ejecta/He-core. SN 2023ixf displayed two dominant axes, one along the CSM-outer ejecta and the other along the inner ejecta/He-core, showcasing the independent origin of asymmetry in the early and late evolution. The argument for an aspherical shock front is further strengthened by the presence of a high-velocity broad absorption feature in the blue wing of the Balmer features in addition to the P-Cygni absorption post-16 days. Hydrodynamical light-curve modeling indicated a progenitor mass of 10 M⊙ with a radius of 470 R⊙ and explosion energy of 2 × 1051 erg, along with 0.06 M⊙ of 56 Ni, though these properties are not unique due to modeling degeneracies. The modeling also indicated a two-zone CSM: a confined dense CSM extending up to 5 × 1014 cm with a mass-loss rate of 10−2M⊙ yr−1 and an extended CSM spanning from 5 × 1014 to at least 1016 cm with a mass-loss rate of 10−4M⊙ yr−1, both assuming a wind-velocity of 10 km s−1. The early-nebular phase observations display an axisymmetric line profile of [O i], redward attenuation of the emission of Hα post 125 days, and flattening in the Ks-band, marking the onset of dust formation.
Description: Open Access
Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI
URI: http://hdl.handle.net/2248/8589
ISSN: 1538-4357
Appears in Collections:IIAP Publications



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