Particle identification — 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 radiating charge — the same set of essays touches all of them, so they are one junction rather than several.
Why the glow of a fast charge is blue
A charge moving in a straight line at constant speed does not radiate — in a vacuum. In water, if it moves faster than light does in water, it glows, and the glow is blue. The cone of the light is the familiar half of the story. The other half is a count: Frank and Tamm's formula says each centimetre of water yields about two hundred visible photons, in numbers that rise as the inverse square of the wavelength, which is why a reactor pool shines blue and why the light keeps getting stronger into the ultraviolet until water stops being transparent. The charge never accelerates. What radiates is the water.
The light a charge makes by changing medium
A charge moving at constant speed in a straight line radiates nothing in a vacuum, and nothing in glass either if it is slower than light there. Let it cross from one into the other and it radiates at the boundary, though it neither turns nor slows. The field it carries has one shape in each medium and has to be rebuilt as it crosses, and what is shed in the rebuilding is light. The energy shed grows in proportion to the particle's Lorentz factor, the one property of a fast particle that almost nothing else measures at high energy, and this is why detectors stack hundreds of plastic foils in a particle's path to collect one or two X-rays.
Named alongside it
The objects these essays reach for when they reach for this one.
Radiating chargeRefractive indexCherenkov radiationDispersionFormation zoneInterferenceThe Lorentz factorNeutrino detectionPlasma frequencyPolarisation densityThresholdTransition radiation