Mean life — where it appears
Named by 2 essays across 2 fields — each of them below, with the objects they name alongside it.
The clock read by counting atoms
Radiocarbon dating reads a clock that ticks slowly: a gram of living carbon holds sixty thousand million carbon-14 atoms, and only thirteen and a half of them decay each minute. Counting those decays to date a milligram of bone would take years. Counting the atoms themselves, one by one in an accelerator, takes an hour, because in any measurement shorter than the clock's mean life almost every atom is still there, undecayed and countable. And the method's famous limit of about fifty thousand years turns out not to be set by the half-life at all. It is set by how much modern carbon a sample has picked up, because a trace of contamination outweighs whatever carbon-14 a very old sample has left.
The turns a muon makes at any energy
A muon lives two microseconds, and in a storage ring it lives longer the faster it goes, because its clock runs slow. Its orbit runs slow too: a faster muon carries more momentum, bends less in the same field and takes longer to go round. The two slowings are the same factor of gamma, so they cancel. A muon in a 1.45 tesla ring makes 431 turns in a mean life whether it is moving at nine-tenths of the speed of light or at nine nines, and the only way to more turns is a stronger magnet. The same cancellation is why the first cyclotrons stopped working near twenty million electronvolts.
Named alongside it
The objects these essays reach for when they reach for this one.
Accelerator mass spectrometryCalibrationContaminationCosmogenic isotopeCounting statisticsCyclotron frequencyDecay lengthHalf-lifeThe Lorentz factorMuonParticle acceleratorRadiocarbon dating