Compactness — where it appears
Named by 2 essays across one field — each of them below, with the objects they name alongside it.
The redshift that weighs a dead star
Light leaving the surface of an ordinary star is reddened by gravity, but the shift alone says little, because a star's radius is free and the shift depends on mass over radius. A white dwarf has no free radius. Degenerate electrons fix its size from its mass, so one measured line shift returns one mass — and the gauge grows sharper the closer the star is to collapse. The first measurement of it, in 1925, was hailed as a confirmation of general relativity and was wrong by a factor of four, in agreement with a forecast that was wrong by the same factor.
The star whose far side can be seen
Look at a ball and half of it faces you; the other half is hidden behind it. That half is a fact about straight lines, and near a neutron star the lines are not straight. Light leaving the surface is bent round the star on its way out, so a distant observer sees three-quarters of a typical neutron star at once — and a star squeezed to 1.76 times its own Schwarzschild radius would show every point of its surface, the point directly behind it included.
Named alongside it
The objects these essays reach for when they reach for this one.
Neutron starChandrasekhar limitDegeneracy pressureGeodesicGravitational redshiftImpact parameterLight deflectionMass radius relationPhoton sphereSchwarzschild radiusSpectral lineWhite dwarf