Electron capture — where it appears
Named by 2 essays across 2 fields — each of them below, with the objects they name alongside it.
The half-life that chemistry can change
A nucleus has no clock, the usual account goes, and nothing outside it touches the rate. That is very nearly true and it is not exactly true. Electron capture takes an electron from the nucleus's own position, so its rate is proportional to how many electrons are there — which is chemistry, worth a per cent. And a nucleus stripped of every electron can gain a decay channel it did not have: rhenium-187 goes from forty-two billion years to thirty-three.
The protons a star cannot afford
A free neutron decays in fifteen minutes into a proton, an electron and an antineutrino. Inside a neutron star it cannot, and the star is made of neutrons because of it. Beta decay is a reaction like any other, and at equilibrium the neutron's chemical potential must equal the proton's plus the electron's. In a crowded star an electron can only be added at the top of a sea tens of megaelectronvolts deep. So the matter settles where protons are rare: half a per cent of the nucleons at nuclear density, if nucleons were free, and never more than one in nine at any density.
Named alongside it
The objects these essays reach for when they reach for this one.
Atomic structureBeta decayBeta equilibriumChemical potentialDecayDecay constantDegenerate matterFermi energyHalf-lifeIonisationNeutron starPauli exclusion