Fermi liquid — where it appears
Named by 2 essays across 2 fields — each of them below, with the objects they name alongside it.
The melting curve that has to arrive flat
The slope of every line on which two phases coexist is their difference in entropy divided by their difference in volume. The third law says that entropy differences vanish at absolute zero, so every such line — melting, boiling, a superconductor's critical field — must reach the bottom of the temperature scale lying flat. Helium-3 reaches it in the strangest way available: below a third of a kelvin its solid is more disordered than its liquid, the melting curve runs backwards, and squeezing the liquid into solid absorbs heat. That backwards curve was the refrigerator in which superfluid helium-3 was found, and it is now the definition of temperature below one kelvin.
The collisions the exclusion principle forbids
A copper wire holds one free electron per atom, packed a quarter of a nanometre apart and repelling one another with the full Coulomb force. It seems impossible that an electron could travel any distance through that crowd without colliding. It travels micrometres — thousands of atoms — before another electron deflects it. The collisions are not weak. They are forbidden: to collide, both electrons need empty states to move into, and in a sea filled to the brim almost none exist. The same rule makes cold helium-3 thicken as the square of how cold it gets.
Named alongside it
The objects these essays reach for when they reach for this one.
Clausius clapeyronEntropyFermi dirac distributionFermi energyHelium 3Mean free pathMeltingPauli exclusionPhase transitionQuasiparticleScatteringSuperfluidity