A strong ultraviolet pulse from a newborn type Ia supernova.
Yi Cao,Shrinivas R. Kulkarni,D. Andrew Howell,D. Andrew Howell,Avishay Gal-Yam,Mansi M. Kasliwal,Stefano Valenti,Stefano Valenti,Joel Johansson,Rahman Amanullah,Ariel Goobar,Jesper Sollerman,Francesco Taddia,Assaf Horesh,Ilan Sagiv,S. Bradley Cenko,Peter Nugent,Peter Nugent,Iair Arcavi,Iair Arcavi,Jason Surace,Przemysław Woźniak,Daniela I. Moody,Umaa Rebbapragada,Brian D. Bue,Neil Gehrels +25 more
TL;DR: Astronomers report observations with the Swift Space Telescope of strong but declining ultraviolet emission from a type Ia supernova within four days of its explosion, consistent with theoretical expectations of collision between material ejected by the supernova and a companion star, and therefore provides evidence that some type IA supernovae arise from the single degenerate channel.
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Abstract: Type Ia supernovae are destructive explosions of carbon-oxygen white dwarfs. Although they are used empirically to measure cosmological distances, the nature of their progenitors remains mysterious. One of the leading progenitor models, called the single degenerate channel, hypothesizes that a white dwarf accretes matter from a companion star and the resulting increase in its central pressure and temperature ignites thermonuclear explosion. Here we report observations with the Swift Space Telescope of strong but declining ultraviolet emission from a type Ia supernova within four days of its explosion. This emission is consistent with theoretical expectations of collision between material ejected by the supernova and a companion star, and therefore provides evidence that some type Ia supernovae arise from the single degenerate channel.
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Citations
Against the wind: Radio light curves of type ia supernovae interacting with low-density circumstellar shells
TL;DR: In this paper, the interaction of SNe with a spherical, low-density, finite-extent CSM and create a suite of synthetic radio synchrotron light curves was modeled.
An investigation of 56 Ni shells as the source of early light curve bumps in type Ia supernovae
M. R. Magee,K. Maguire +1 more
TL;DR: In this article, a series of model light curves and spectra for ejecta profiles containing $56}$Ni shells of varying masses (0.01, 0.03, and 0.04~$M_{\rm{\odot}}$) and widths were presented.
Imprints of the ejecta–companion interaction in Type Ia supernovae: main-sequence, subgiant, and red giant companions
TL;DR: In this paper, a simulation-based analysis of the amount and thermal properties of the shock-heated envelope material responsible for soft X-ray emission is presented, and the amount of energy deposited in the envelope is comparable to the energy stored in the ejecta.
On the Progenitors of Type Ia Supernovae
Mario Livio,Paolo A. Mazzali +1 more
TL;DR: In this paper, the authors review all the models proposed for the progenitor systems of Type Ia supernovae and discuss the strengths and weaknesses of each scenario when confronted with observations.
The HSC-SSP Transient Survey: Implications from Early Photometry and Rise Time of Normal Type Ia Supernovae
Ji-an Jiang,Naoki Yasuda,Keiichi Maeda,Keiichi Maeda,Mamoru Doi,Mamoru Doi,Toshikazu Shigeyama,Nozomu Tominaga,Nozomu Tominaga,Masaomi Tanaka,Masaomi Tanaka,Takashi J. Moriya,Takashi J. Moriya,Ichiro Takahashi,Nao Suzuki,Tomoki Morokuma,Tomoki Morokuma,Ken'ichi Nomoto +17 more
TL;DR: In this paper, the authors reported early phase observations of seven photometrically normal Type Ia supernovae (SNe Ia) (six early detections and one deep non-detection limit) at COSMOS field through a half-year transient survey as a part of the Hyper Suprime-Cam Subaru Strategic Program (HSC SSP).
References
Observational Evidence from Supernovae for an Accelerating Universe and a Cosmological Constant
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TL;DR: In this article, the authors used spectral and photometric observations of 10 Type Ia supernovae (SNe Ia) in the redshift range 0.16 " z " 0.62.
Measurements of Omega and Lambda from 42 High-Redshift Supernovae
Saul Perlmutter,Saul Perlmutter,Greg Aldering,Gerson Goldhaber,Gerson Goldhaber,R. A. Knop,Peter Nugent,P. G. Castro,P. G. Castro,Susana E. Deustua,Sebastien Fabbro,Sebastien Fabbro,A. Goobar,A. Goobar,Donald E. Groom,I. M. Hook,I. M. Hook,A. G. Kim,A. G. Kim,A. G. Kim,M. Y. Kim,Julia C. Lee,Julia C. Lee,Nelson J. Nunes,Nelson J. Nunes,Reynald Pain,Reynald Pain,C. R. Pennypacker,C. R. Pennypacker,Robert Quimby,Christopher Lidman,Richard S. Ellis,Mike Irwin,Richard G. McMahon,Pilar Ruiz-Lapuente,Nicholas A. Walton,Bradley E. Schaefer,B. J. Boyle,Alexei V. Filippenko,Thomas Matheson,A. S. Fruchter,Nino Panagia,Nino Panagia,Heidi Jo Newberg,Warrick J. Couch +44 more
TL;DR: In this paper, the mass density, Omega_M, and cosmological-constant energy density of the universe were measured using the analysis of 42 Type Ia supernovae discovered by the Supernova Cosmology project.
Measurements of Omega and Lambda from 42 High-Redshift Supernovae
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TL;DR: In this paper, the mass density, Omega_M, and cosmological-constant energy density of the universe were measured by the analysis of 42 Type Ia supernovae discovered by the Supernova Cosmology Project.
Observational Evidence from Supernovae for an Accelerating Universe and a Cosmological Constant To Appear in the Astronomical Journal
Adam G. Riess,Alexei V. Filippenko,Peter Challis,A. Clocchiatti,Alan H. Diercks,R. L. Gilliland,Craig J. Hogan,Saurabh Jha,Robert P. Kirshner,Bruno Leibundgut,David J Reiss,Brian P. Schmidt,Robert A. Schommer,R. Chris Smith,Jason Spyromilio,Christopher W. Stubbs,Nicholas B. Suntzeff,John L. Tonry +17 more
- 01 Jan 1998
TL;DR: The spectral and photometric observations of 10 type Ia supernovae (SNe Ia) in the redshift range 0.16 � z � 0.62 were presented in this paper.
13.5K
Planck 2013 results. XVI. Cosmological parameters
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TL;DR: In this paper, the authors present the first cosmological results based on Planck measurements of the cosmic microwave background (CMB) temperature and lensing-potential power spectra, which are extremely well described by the standard spatially-flat six-parameter ΛCDM cosmology with a power-law spectrum of adiabatic scalar perturbations.
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