Mass ejection by pulsational pair instability in very massive stars and implications for luminous supernovae
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[1] H. Umeda,et al. Exact and approximate expressions of energy generation rates and their impact on the explosion properties of pair instability supernovae , 2015, 1511.03040.
[2] K. Nomoto,et al. TYPE I SUPERLUMINOUS SUPERNOVAE AS EXPLOSIONS INSIDE NON-HYDROGEN CIRCUMSTELLAR ENVELOPES , 2015, 1510.00834.
[3] E. Ofek,et al. DETECTION OF BROAD Hα EMISSION LINES IN THE LATE-TIME SPECTRA OF A HYDROGEN-POOR SUPERLUMINOUS SUPERNOVA , 2015, 1508.04420.
[4] R. Kotak,et al. The host galaxy and late-time evolution of the superluminous supernova PTF12dam , 2014, 1409.7728.
[5] T. Moriya,et al. CONSTRAINING PHYSICAL PROPERTIES OF TYPE IIn SUPERNOVAE THROUGH RISE TIMES AND PEAK LUMINOSITIES , 2014, 1406.7783.
[6] M. Sullivan,et al. Superluminous supernovae from PESSTO , 2014, 1405.1325.
[7] Y. Fukazawa,et al. LONG-LASTING X-RAY EMISSION FROM TYPE IIb SUPERNOVA 2011dh AND MASS-LOSS HISTORY OF THE YELLOW SUPERGIANT PROGENITOR , 2014, 1403.2455.
[8] J. Sollerman,et al. Mass-loss histories of Type IIn supernova progenitors within decades before their explosion , 2014, 1401.4893.
[9] Shinpei Okita,et al. Type Ic core-collapse supernova explosions evolved from very massive stars , 2013, 1312.7043.
[10] J. Sollerman,et al. An analytic bolometric light curve model of interaction-powered supernovae and its application to Type IIn supernovae , 2013, 1307.2644.
[11] G. Meynet,et al. Evolution and fate of very massive stars , 2013, 1305.2099.
[12] A. Loeb,et al. Superluminous X-ray emission from the interaction of supernova ejecta with dense circumstellar shells , 2013, 1303.6958.
[13] M. L. Pumo,et al. INTERACTING SUPERNOVAE AND SUPERNOVA IMPOSTORS: SN 2009ip, IS THIS THE END? , 2012, 1210.3568.
[14] E. Chatzopoulos,et al. HYDROGEN-POOR CIRCUMSTELLAR SHELLS FROM PULSATIONAL PAIR-INSTABILITY SUPERNOVAE WITH RAPIDLY ROTATING PROGENITORS , 2012, 1210.1617.
[15] K. Maeda. PROBING SHOCK BREAKOUT AND PROGENITORS OF STRIPPED-ENVELOPE SUPERNOVAE THROUGH THEIR EARLY RADIO EMISSIONS , 2012, 1209.1904.
[16] A. Gal-yam. Luminous Supernovae , 2012, Science.
[17] Naoki Yoshida,et al. Detectability of high‐redshift superluminous supernovae with upcoming optical and near‐infrared surveys , 2012, 1202.3610.
[18] R. Chevalier,et al. X-RAYS FROM SUPERNOVA SHOCKS IN DENSE MASS LOSS , 2012, 1201.5581.
[19] R. Nichol,et al. SN 2006oz: Rise Of A Super-Luminous Supernova Observed By The SDSS-II SN Survey , 2012, 1201.5393.
[20] H. Umeda,et al. A progenitor for the extremely luminous Type Ic supernova 2007bi , 2011, 1101.0635.
[21] Olivier Schnurr,et al. The R136 star cluster hosts several stars whose individual masses greatly exceed the accepted 150 M⊙ stellar mass limit , 2010, 1007.3284.
[22] K. Nomoto,et al. A CORE-COLLAPSE SUPERNOVA MODEL FOR THE EXTREMELY LUMINOUS TYPE Ic SUPERNOVA 2007bi: AN ALTERNATIVE TO THE PAIR-INSTABILITY SUPERNOVA MODEL , 2010, 1004.2967.
[23] A. Drake,et al. Supernova 2007bi as a pair-instability explosion , 2009, Nature.
[24] Lars Bildsten,et al. SUPERNOVA LIGHT CURVES POWERED BY YOUNG MAGNETARS , 2009, 0911.0680.
[25] E. O. Ofek,et al. Hydrogen-poor superluminous stellar explosions , 2009, Nature.
[26] K. Nomoto,et al. Optical photometry and spectroscopy of the Type Ibn supernova SN 2006jc until the onset of dust formation , 2008, 0811.0060.
[27] R. Waldman. The Most Massive Core-Collapse Supernova Progenitors , 2008, 0806.3544.
[28] S. Woosley,et al. Pulsational pair instability as an explanation for the most luminous supernovae , 2007, Nature.
[29] A. de Koter,et al. On the evolution and fate of super-massive stars , 2007, 0710.1181.
[30] Robert M. Quimby,et al. SN 2005ap: A Most Brilliant Explosion , 2007, 0709.0302.
[31] N. Langer,et al. Pair creation supernovae at low and high redshift , 2007, 0708.1970.
[32] Hideyuki Umeda,et al. How Much 56Ni Can Be Produced in Core-Collapse Supernovae? Evolution and Explosions of 30-100 M☉ Stars , 2007, 0707.2598.
[33] P. Mazzali,et al. The Unique Type Ib Supernova 2005bf at Nebular Phases: A Possible Birth Event of a Strongly Magnetized Neutron Star , 2007, 0705.2713.
[34] A. Pastorello,et al. A giant outburst two years before the core-collapse of a massive star , 2007, Nature.
[35] Charles E. Hansen,et al. SN 2006gy: Discovery of the Most Luminous Supernova Ever Recorded, Powered by the Death of an Extremely Massive Star like η Carinae , 2006, astro-ph/0612617.
[36] Y. Yoshii,et al. A Two-Component Model for the Light Curves of Hypernovae , 2003, astro-ph/0305182.
[37] P. Slane,et al. Neutron Stars in Supernova Remnants , 2002 .
[38] S. Woosley,et al. The Nucleosynthetic Signature of Population III , 2001, astro-ph/0107037.
[39] K. Nomoto,et al. Nucleosynthesis of Zinc and Iron Peak Elements in Population III Type II Supernovae: Comparison with Abundances of Very Metal Poor Halo Stars , 2001, astro-ph/0103241.
[40] F. Pacini. Neutron Stars in Supernova Remnants , 1999, astro-ph/9911418.
[41] P. Woodward,et al. The Piecewise Parabolic Method (PPM) for Gas Dynamical Simulations , 1984 .
[42] W. Arnett. Type I supernovae. I. Analytic solutions for the early part of the light curve , 1982 .
[43] K. Nomoto,et al. Submitted to the Astrophysical Journal on July 13, 2003 Variations in the Abundance Pattern of Extremely Metal-poor Stars and Nucleosynthesis in Population III Supernovae , 2003 .