Rayleigh range — where it appears
Named by 2 essays across one field — each of them below, with the objects they name alongside it.
The half cycle a focus adds
A beam of light brought to a focus and allowed to spread again comes out half a wavelength ahead of where a plain wave of the same colour would be, although no part of it travelled faster than light. Louis Georges Gouy found the shift in 1890 by interfering a focused beam with an unfocused one. It is the price of confinement: a beam narrow enough to focus is a spread of directions, the parts travelling at an angle make slower progress along the axis, and the spread is greatest at the focus. The same half cycle decides the frequencies at which every laser cavity can resonate.
The beam that focuses itself
In glass the refractive index rises very slightly with the intensity of the light, so a beam that is brightest in the middle writes a converging lens into the glass it is crossing. Diffraction spreads it at the same time. Both effects grow in the same proportion as the beam is narrowed, so neither can win by a change of size — only by a change of power. Above a critical power, 4.3 megawatts in fused silica, the beam is forced to collapse within a finite distance, and every high-power laser is built around not letting that happen where it is not wanted.
Named alongside it
The objects these essays reach for when they reach for this one.
DiffractionAngular spectrumCritical powerFermat's principleFilamentationGaussian beamGouy phaseKerr effectOptical cavityRefractive indexSelf focusingTransverse mode