Constraints on the Progenitor System of the Type Ia Supernova SN 2011fe/PTF11kly

[1]  Lars Bildsten,et al.  THE LONG-TERM EVOLUTION OF DOUBLE WHITE DWARF MERGERS , 2011, 1108.4036.

[2]  K. Maguire,et al.  No progenitor detection for PTF11kly/SN2011fe in Hubble Space Telescope pre-explosion images , 2011 .

[3]  Rollin C. Thomas,et al.  Young Type Ia Supernova PTF11kly in M101 , 2011 .

[4]  J. Bloom,et al.  Further Analysis of the archival HST images of PTF11kly in M101 , 2011 .

[5]  K. Z. Stanek,et al.  A NEW CEPHEID DISTANCE TO THE GIANT SPIRAL M101 BASED ON IMAGE SUBTRACTION OF HUBBLE SPACE TELESCOPE/ADVANCED CAMERA FOR SURVEYS OBSERVATIONS , 2011 .

[6]  D. Howell,et al.  Type Ia supernovae as stellar endpoints and cosmological tools. , 2010, Nature communications.

[7]  E. Ofek,et al.  DISCOVERY OF A NEW PHOTOMETRIC SUB-CLASS OF FAINT AND FAST CLASSICAL NOVAE , 2010, 1003.1720.

[8]  Izumi Hachisu,et al.  SUPERSOFT X-RAY PHASE OF SINGLE DEGENERATE TYPE Ia SUPERNOVA PROGENITORS IN EARLY-TYPE GALAXIES , 2010, 1010.5860.

[9]  G. Torres ON THE USE OF EMPIRICAL BOLOMETRIC CORRECTIONS FOR STARS , 2010, 1008.3913.

[10]  Wen-Cong Chen,et al.  Helium-star evolutionary channel to super-Chandrasekhar mass type Ia supernovae , 2010, 1007.4751.

[11]  R. D. Stefano THE PROGENITORS OF TYPE Ia SUPERNOVAE. II. ARE THEY DOUBLE-DEGENERATE BINARIES? THE SYMBIOTIC CHANNEL , 2010, 1004.1193.

[12]  W. Hillebrandt,et al.  Double-detonation sub-Chandrasekhar supernovae: can minimum helium shell masses detonate the core? , 2010, 1002.2173.

[13]  B. Schaefer COMPREHENSIVE PHOTOMETRIC HISTORIES OF ALL KNOWN GALACTIC RECURRENT NOVAE , 2009, 0912.4426.

[14]  Rosanne Di Stefano,et al.  THE PROGENITORS OF TYPE Ia SUPERNOVAE. I. ARE THEY SUPERSOFT SOURCES , 2009, 0912.0757.

[15]  J. Rho,et al.  SpS1-The Spitzer atlas of stellar spectra , 2009, Proceedings of the International Astronomical Union.

[16]  Ernest E. Croner,et al.  The Palomar Transient Factory: System Overview, Performance, and First Results , 2009, 0906.5350.

[17]  Oxford,et al.  Exploring the Optical Transient Sky with the Palomar Transient Factory , 2009, 0906.5355.

[18]  T. Iijima Circumstellar Envelope of RS Ophiuchi , 2008 .

[19]  R. Barry,et al.  On the Distance of RS Ophiuchi , 2008 .

[20]  F. Förster,et al.  The nuclear diversity of Type Ia supernova explosions , 2008 .

[21]  S. Kiyota,et al.  Helium Nova on a Very Massive White Dwarf: A Revised Light-Curve Model of V445 Puppis (2000) , 2008, 0805.2540.

[22]  G. Nelemans,et al.  Limits on the X-ray and optical luminosity of the progenitor of the type Ia supernova 2007sr , 2008, 0802.2239.

[23]  G. Nelemans,et al.  Discovery of the progenitor of the type Ia supernova 2007on , 2008, Nature.

[24]  F. Mannucci,et al.  A search for the progenitors of two Type Ia Supernovae in NGC 1316 , 2008, 0801.2898.

[25]  Sung-Chul Yoon,et al.  Remnant evolution after a carbon–oxygen white dwarf merger , 2007, 0704.0297.

[26]  P. Mazzali,et al.  A Common Explosion Mechanism for Type Ia Supernovae , 2007, Science.

[27]  Marco Bonati,et al.  The Automated Palomar 60 Inch Telescope , 2006, astro-ph/0608323.

[28]  Douglas M. Summers,et al.  The W. M. Keck Observatory Laser Guide Star Adaptive Optics System: Overview , 2006 .

[29]  M. Livio,et al.  Identification of the Red Supergiant Progenitor of Supernova 2005cs: Do the Progenitors of Type II-P Supernovae Have Low Mass? , 2005, astro-ph/0507394.

[30]  W. B. Burton,et al.  The Leiden/Argentine/Bonn (LAB) Survey of Galactic HI - Final data release of the combined LDS and IAR surveys with improved stray-radiation corrections , 2005, astro-ph/0504140.

[31]  R. Kurucz,et al.  New Grids of ATLAS9 Model Atmospheres , 2004, astro-ph/0405087.

[32]  P. Podsiadlowski On the Evolution and Appearance of a Surviving Companion after a Type Ia Supernova Explosion , 2003, astro-ph/0303660.

[33]  D. Branch,et al.  Optical Spectra of Supernovae , 2001, astro-ph/0111573.

[34]  서정헌,et al.  반도체 공정 overview , 2001 .

[35]  UK.,et al.  The mass of the white dwarf in the recurrent nova U Scorpii , 2001, astro-ph/0107477.

[36]  Izumi Hachisu,et al.  Recurrent Novae as a Progenitor System of Type Ia Supernovae. I. RS Ophiuchi Subclass: Systems with a Red Giant Companion , 2001, astro-ph/0104040.

[37]  Alexei V. Filippenko,et al.  The Lick Observatory Supernova Search with the Katzman Automatic Imaging Telescope , 2001 .

[38]  M. J.,et al.  CONTROLLING THE FALSE-DISCOVERY RATE IN ASTROPHYSICAL DATA ANALYSIS , 2001 .

[39]  N. Benı́tez,et al.  The Photometric Performance and Calibration of the Hubble Space Telescope Advanced Camera for Surveys , 2005, astro-ph/0507614.

[40]  J. Greiner Catalog of supersoft X-ray sources , 2000, astro-ph/0005238.

[41]  G. Anupama,et al.  Recurrent novae at quiescence: systems with giant secondaries , 1998, astro-ph/9812432.

[42]  A. Pickles A Stellar Spectral Flux Library: 1150–25000 Å , 1998 .

[43]  D. Schlegel,et al.  Maps of Dust Infrared Emission for Use in Estimation of Reddening and Cosmic Microwave Background Radiation Foregrounds , 1998 .

[44]  A. Riess,et al.  Observational Evidence from Supernovae for an Accelerating Universe and a Cosmological Constant , 1998, astro-ph/9805201.

[45]  Garth D. Illingworth,et al.  The Extragalactic Distance Scale Key Project. XVI. Cepheid Variables in an Inner Field of M101 , 1998 .

[46]  J. Mikołajewska,et al.  New binary parameters for the symbiotic recurrent nova T Coronae Borealis , 1997, astro-ph/9711151.

[47]  K. Nomoto,et al.  Type Ia supernovae: their origin and possible applications in cosmology. , 1997, Science.

[48]  Stefano Casertano,et al.  THE PHOTOMETRIC PERFORMANCE AND CALIBRATION OF WFPC2 , 1995 .

[49]  Stefano Casertano,et al.  THE PERFORMANCE AND CALIBRATION OF WFPC2 ON THE HUBBLE SPACE TELESCOPE , 1995 .

[50]  Y. Benjamini,et al.  Controlling the false discovery rate: a practical and powerful approach to multiple testing , 1995 .

[51]  S. Woosley,et al.  Sub-Chandrasekhar mass models for Type IA supernovae , 1994 .

[52]  M. Phillips,et al.  The Absolute Magnitudes of Type IA Supernovae , 1993 .

[53]  U. Munari Symbiotic stars as precursors of the type Ia supernovae , 1992 .

[54]  Ken'ichi Nomoto,et al.  Accreting white dwarf models for CAL 83, CAL 87 and other ultrasoft X-ray sources in the LMC , 1992 .

[55]  M. Livio Classical novae and the extragalactic distance scale , 1992 .

[56]  R. Webbink Double white dwarfs as progenitors of R Coronae Borealis stars and type I supernovae , 1984 .

[57]  V. Straižys,et al.  Fundamental stellar parameters derived from the evolutionary tracks , 1981 .

[58]  K. Nomoto Accreting white dwarf models for type I supernovae. I. Presupernova evolution and triggering mechanisms , 1981 .

[59]  W. Cash,et al.  Parameter estimation in astronomy through application of the likelihood ratio. [satellite data analysis techniques , 1979 .

[60]  J. Whelan,et al.  Binaries and Supernovae of Type I , 1973 .