Deuterium abundance — where it appears
Named by 5 essays across one field — each of them below, with the objects they name alongside it.
Four abundances and one free parameter
In the first three minutes the universe ran a nuclear reaction network with exactly one adjustable number in it. That number predicts four abundances spanning nine orders of magnitude, three of them are observed and match, and the fourth is wrong by a factor of three and has been for twenty-five years.
The residue that failed to burn
Deuterium's abundance is not a measure of what the first three minutes made. It is a measure of what escaped being used — a two-body destruction rate losing a race to a one-body expansion, which is why its curve against the baryon density is steep and helium's is flat.
A factor of three, and the flatness that prices every cure
The oldest stars in the Galaxy show a third of the lithium the first three minutes should have left. Three kinds of resolution have been offered, and the datum that rules on all three is not how much lithium is missing but how uniformly it is missing.
An abundance with no direction to correct in
Every primordial abundance is measured today and extrapolated backwards, and the extrapolation works because processing moves each species one way. Helium-3 is made by small stars and destroyed by large ones, so the sign of its correction is not merely uncertain — it is unknown.
The universe that was lumpy at one second
If the baryons were unevenly spread when the network fired, each region ran its own nucleosynthesis and what is observed is an average. For a decade that was the one way to make ordinary matter account for all the matter — and the reason it fails is a theorem about convex curves.
Named alongside it
The objects these essays reach for when they reach for this one.
Baryon-to-photon ratioBig bang nucleosynthesisBaryon densityLithium problemPrimordial abundanceConvective envelopeFreeze outGamow peakQuasar absorption linesRadiative captureAstrationBinding energy