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Panning for gold, but finding helium: Discovery of the ultra-stripped supernova SN 2019wxt from gravitational-wave follow-up observations

  • I. Agudo
  • , L. Amati
  • , T. An
  • , F. E. Bauer
  • , S. Benetti
  • , M. G. Bernardini
  • , R. Beswick
  • , K. Bhirombhakdi
  • , T. De Boer
  • , M. Branchesi
  • , S. J. Brennan
  • , E. Brocato
  • , M. D. Caballero-García
  • , E. Cappellaro
  • , N. Castro Rodríguez
  • , A. J. Castro-Tirado
  • , K. C. Chambers
  • , E. Chassande-Mottin
  • , S. Chaty
  • , T. W. Chen
  • A. Coleiro, S. Covino, F. Da'ammando, P. Da'avanzo, V. Da'elia, A. Fiore, A. Flörs, M. Fraser, S. Frey, C. Frohmaier, M. Fulton, L. Galbany, C. Gall, H. Gao, J. García-Rojas, G. Ghirlanda, S. Giarratana, J. H. Gillanders, M. Giroletti, B. P. Gompertz, M. Gromadzki, K. E. Heintz, J. Hjorth, Y. D. Hu, M. E. Huber, A. Inkenhaag, L. Izzo, Z. P. Jin, P. G. Jonker, D. A. Kann, E. C. Kool, R. Kotak, G. Leloudas, A. J. Levan, C. C. Lin, J. D. Lyman, E. A. Magnier, K. Maguire, I. Mandel, B. Marcote, D. Mata Sánchez, S. Mattila, A. Melandri, M. J. Michaåà  Owski, J. Moldon, M. Nicholl, A. Nicuesa Guelbenzu, S. R. Oates, F. Onori, M. Orienti, R. Paladino, Z. Paragi, M. Perez-Torres, E. Pian, G. Pignata, S. Piranomonte, J. Quirola-Vásquez, F. Ragosta, A. Rau, S. Ronchini, A. Rossi, R. Sánchez-Ramírez, O. S. Salafia, S. Schulze, S. J. Smartt, K. W. Smith, J. Sollerman, S. Srivastav, R. L.C. Starling, D. Steeghs, H. F. Stevance, N. R. Tanvir, V. Testa, M. A.P. Torres, A. Valeev, S. D. Vergani, D. Vescovi, R. Wainscost, D. Watson, K. Wiersema, L. Wyrzykowski, J. Yang, S. Yang, D. R. Young
  • Istituto di Astrofisica Spaziale e Fisica Cosmica di Bologna
  • Peng Cheng Laboratory
  • University of Manchester
  • Space Telescope Science Institute
  • University of Hawai'i at Mānoa
  • National Institute for Nuclear Physics
  • University College Dublin
  • Osservatorio Astronomico Roma
  • Université Paris 7
  • Max Planck Institute for Extraterrestrial Physics
  • University of Trento
  • GSI Helmholtz Centre for Heavy Ion Research
  • Research Centre For Astronomy and Earth Sciences
  • University of Southampton
  • Institute of Space Studies of Catalonia
  • University of Copenhagen
  • University of Bologna
  • University of Birmingham
  • University of Warsaw
  • University of Granada
  • CAS - Purple Mountain Observatory
  • University of Turku
  • Trinity College Dublin
  • Monash University
  • Adam Mickiewicz University in Poznań
  • Karl Schwarzschild Observatory
  • Universidad Andrés Bello
  • The University of Auckland
  • RAS - Special Astrophysical Observatory
  • Observatoire de Paris
  • Goethe University Frankfurt
  • Lancaster University
  • Chalmers University of Technology
  • CSIC - Institute of Astrophysics of Andalusia
  • Astronomical Observatory of Padua
  • National Institute for Astrophysics
  • Instituto de Astrofísica de Canarias
  • Queen's University Belfast
  • Pontificia Universidad Católica de Chile
  • University of Leicester
  • Stockholm University
  • JIV-ERIC
  • Instituto Milenio de Astrofísica
  • Radboud University Nijmegen
  • University of Warwick
  • Gran Sasso Science Institute
  • University of La Laguna

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Abstract

We present the results from multi-wavelength observations of a transient discovered during an intensive follow-up campaign of S191213g, a gravitational wave (GW) event reported by the LIGO-Virgo Collaboration as a possible binary neutron star merger in a low latency search. This search yielded SN 2019wxt, a young transient in a galaxy whose sky position (in the 80% GW contour) and distance (∼150 Mpc) were plausibly compatible with the localisation uncertainty of the GW event. Initially, the transienta's tightly constrained age, its relatively faint peak magnitude (Mi ∼ -16.7 mag), and the r-band decline rate of ∼1 mag per 5 days appeared suggestive of a compact binary merger. However, SN 2019wxt spectroscopically resembled a type Ib supernova, and analysis of the optical-near-infrared evolution rapidly led to the conclusion that while it could not be associated with S191213g, it nevertheless represented an extreme outcome of stellar evolution. By modelling the light curve, we estimated an ejecta mass of only ∼0.1 M·, with 56Ni comprising ∼20% of this. We were broadly able to reproduce its spectral evolution with a composition dominated by helium and oxygen, with trace amounts of calcium. We considered various progenitor channels that could give rise to the observed properties of SN 2019wxt and concluded that an ultra-stripped origin in a binary system is the most likely explanation. Disentangling genuine electromagnetic counterparts to GW events from transients such as SN 2019wxt soon after discovery is challenging: in a bid to characterise this level of contamination, we estimated the rate of events with a volumetric rate density comparable to that of SN 2019wxt and found that around one such event per week can occur within the typical GW localisation area of O4 alerts out to a luminosity distance of 500 Mpc, beyond which it would become fainter than the typical depth of current electromagnetic follow-up campaigns.

Original languageEnglish
Article numberA201
JournalAstronomy and Astrophysics
Volume675
Number of pages34
ISSN0004-6361
DOIs
Publication statusPublished - 2023

Keywords

  • Binaries: general
  • Gravitational waves
  • Stars: evolution
  • Supernovae: general
  • Supernovae: individual: SN2019wxt

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