Flux quantum — where it appears
Named by 2 essays across one field — each of them below, with the objects they name alongside it.
Also named here as phase coherence — the same set of essays touches all of them, so they are one junction rather than several.
The two in the flux quantum
A superconducting ring cannot hold whatever flux is applied to it. It holds a whole number of quanta and drives a current to make up the difference, and the size of that quantum is Planck's constant divided by twice the electron's charge. The factor of two was measured in 1961, four years after somebody predicted that the carriers are pairs — by an experiment in which no charge is measured at all.
The voltage that is a frequency
Two superconductors separated by a barrier a nanometre thick carry a current with no voltage at all, set by the difference of their quantum phases. Push harder and a voltage appears — and a voltage makes that phase difference run, so the current oscillates at 483.6 gigahertz for every millivolt. Shine microwaves on the junction and the voltage locks to exact multiples of the frequency divided by a ratio of fundamental constants, with nothing about the junction in it. That is why a volt is now counted in cycles.
Named alongside it
The objects these essays reach for when they reach for this one.
Macroscopic quantum statePhase coherenceSuperconductivityCondensateCooper pairFlux quantisationJosephson effectLittle parks effectOrder parameterPersistent currentPhase lockingShapiro step