Doppler broadening — where it appears
Named by 2 essays across 2 fields — each of them below, with the objects they name alongside it.
The lines a warm vapour hides
Shine a tunable laser through a cell of rubidium vapour and the absorption is one smooth hump half a gigahertz wide, though the atoms' own lines are eighty times narrower and three of them lie inside it. The atoms are moving, each sees the light Doppler-shifted by its own speed, and their lines are smeared together. Send a second, stronger beam back the other way and narrow dips appear in the hump at exactly the frequencies of the hidden lines — because only atoms standing still can be talked to by both beams at once. The vapour stays at room temperature and the motion is not removed; it is selected against.
The hooks that weigh an absorption line
A strong absorption line is black at its centre, and how black it is says almost nothing about how many atoms made it — double them and the line hardly darkens. The atoms are still there, and they still bend light: on either side of the line, where the vapour is transparent, its refractive index rises and falls by an amount proportional to their number. In 1912 Dmitry Rozhdestvensky found a way to read that index straight off a photograph. Interference fringes passed through a spectrograph curl into hooks beside the line, and the distance between the hooks, squared, counts the atoms — whatever the line's shape and however saturated its core.
Named alongside it
The objects these essays reach for when they reach for this one.
AbsorptionAnomalous dispersionDispersionHyperfine structureInterferometryLaserNatural linewidthOscillator strengthRefractive indexSaturationSpectral lineSpectroscopy