Supernova
A supernova is the catastrophic brightening of a star, in which a single object can for a few weeks outshine the whole galaxy that contains it. Supernovae matter far beyond stellar astrophysics because one class of them, Type Ia, is the standard candle on which the modern distance scale — and with it the claim that cosmic expansion is accelerating — rests.
The standard account
Supernovae are sorted spectroscopically. Core-collapse events (Types II, Ib and Ic) are held to occur when a massive star exhausts its nuclear fuel, its iron core collapses, and the infalling envelope rebounds; most of the released energy escapes as neutrinos. Type Ia events show no hydrogen and are attributed instead to the thermonuclear detonation of a white dwarf that has been driven toward the Chandrasekhar mass of about 1.4 solar masses by accretion from, or merger with, a companion.
The nearest supernova of the modern era, SN 1987A in the Large Magellanic Cloud, was seen on 23 February 1987 and remains the only one for which a neutrino burst was detected. Its expanding, strikingly symmetric triple-ring structure has been imaged for decades.
Type Ia events are treated as standardisable candles: their peak brightness correlates with the decline rate of the light curve, so the shape of the curve is used to correct the peak and yield a distance. In 1998 two teams reported that distant Type Ia supernovae appeared fainter than a freely coasting universe predicts, and this was interpreted as accelerating expansion driven by dark energy. A second argument drawn from the same data is that supernova light curves at redshift z appear stretched by a factor of 1+z, which is presented as a direct observation of cosmological time dilation.
Genuine open questions remain inside the mainstream account: the progenitor systems of Type Ia supernovae have never been identified, the single-degenerate and double-degenerate channels are both problematic, and whether the peak-luminosity calibration drifts with cosmic epoch or with host-galaxy dust is still argued about in the professional literature.
On this wiki
Because the accelerating-universe result is entirely a supernova result, researchers catalogued here scrutinise it closely — see Category:Cosmology and Category:Big Bang.
Tuomo Suntola argues from his Dynamic Universe model that the supernova magnitude–redshift data need no dark energy at all: see Supernova Observations Fit Einstein-deSitter Expansion in 4-sphere, Observations Support Spherically Closed Dynamic Space Without Dark Energy and Zero-Energy Space Cancels the Need for Dark Energy. His claim is not that the observations are wrong but that they are being fitted with the wrong geometry.
Lyndon E Ashmore attacks the time-dilation argument directly in Supernovae Ia Light Curves Show a Static Universe (Proceedings of the NPA, 2012), holding that the observed light-curve stretching follows from his photon–electron recoil mechanism in a static universe — the same mechanism he uses for the redshift itself (see Tired Light). Bob Day puts the question in his title: Accelerating Expansion of the Universe: Yes or No?
From the plasma side, Wallace Thornhill reads SN 1987A's rings as an electrical rather than hydrodynamic structure in The Z-Pinch Morphology of Supernova 1987A and Electric Stars — see Electric Universe and Plasma Cosmology. Thierry De Mees offers a gravitational alternative for the same morphology in The Observed Symmetrical Supernovae Remnants Form Overwhelming Evidence for the Gravitomagnetic Force, arguing that the bipolar symmetry of remnants is the signature of gravitomagnetic fields around a spinning progenitor.
Robert S Fritzius takes the most radical line in Interpreting SN 2006gy from a Modified Ritzian Viewpoint: on Ritz's ballistic emission theory with J. G. Fox's extinction correction, he argues that the "brightest stellar explosion ever recorded" may be a de Sitter ghost image of a nearby binary rather than a distant hypernova at all, citing astrometric positions inconsistent with the assumed host galaxy.
Older nuclear-astrophysical work catalogued here includes Roger A Rydin, A New Nuclear Energy Source for Supernovae, Etc. (Journal of New Energy, 2003), and Arnold G Gulko, Understanding Supernovas - Type I and Relation Between Black Hole and Supernova Actions.
Underlying much of this is the objection associated with Halton C Arp: if redshift is not purely a distance indicator, then a supernova Hubble diagram built on redshifts is measuring something other than what it is assumed to measure.