Strehl ratio — where it appears
Named by 3 essays across one field — each of them below, with the objects they name alongside it.
The correction has to be faster than the air
Making a large telescope resolve like a large telescope means measuring the wavefront and undoing it. Three numbers bound how well that can work and none of them is the mirror — a frequency of hundreds of hertz, a patch a second and a half wide, and the chance of a bright enough star inside it.
An error budget added in quadrature
Adaptive optics does not deliver a resolution. It delivers a fraction of the light in the diffraction core, and that fraction is the exponential of minus a sum of squares. Five independent failures of the correction add in quadrature, the largest one decides everything, and the same hardware is useless in the visible and excellent in the infrared.
A sharp image kept by throwing the rest away
The atmosphere does not blur every instant equally. Now and then, for a few milliseconds, the air over a small telescope is almost flat, and a short exposure taken then is as sharp as the mirror allows. How often that happens falls as the exponential of the square of the telescope's size — which is why the method works on a two-metre mirror in the red and nowhere else.
Named alongside it
The objects these essays reach for when they reach for this one.
Adaptive opticsCone effectDiffraction limitFried parameterIsoplanatic angleLaser guide starAnisoplanatismAtmospheric turbulenceDeformable mirrorError budgetFitting errorGreenwood frequency