M dwarf — where it appears
Named by 4 essays across one field — each of them below, with the objects they name alongside it.
One number sets the zone
The habitable zone is a band of stellar flux, so it scales as the square root of luminosity and moves inward far faster than mass falls. For most stars it lies inside the radius at which a planet is tidally locked.
A smaller star puts the valley lower
Round stars of half the Sun's mass, the gap between bare rocky cores and sub-Neptunes should sit at a smaller radius than round the Sun, because at the same orbital period their planets receive a tenth of the light. Their stars also stay young and active far longer, which pushes the other way. Photoevaporation weighs those two against each other in a definite proportion, and the answer is a valley that scales as the star's mass to about the power three tenths.
A year too short to feel its own eccentricity
A planet on an eccentric orbit can have a comfortable average and murderous extremes, and the habitable zone is drawn from the average. Whether the surface lives on the average or on the extremes is not decided by the flux at all — it is the ratio of how long the surface takes to change temperature to how long the year lasts, and the star sets the year.
Steam before the zone existed
The smallest stars take hundreds of millions of years to contract onto the main sequence, shining at many times the luminosity they will settle at. A planet in the habitable zone such a star will eventually have spends that time with its ocean in the air as steam, while starlight splits the water and the hydrogen leaves — so the zone of the commonest star in the galaxy is a place that had to survive being too hot first.
Named alongside it
The objects these essays reach for when they reach for this one.
Habitable zoneEquilibrium temperatureInsolationRunaway greenhouseXUV fluxAbiotic oxygenAlbedoClimate modelCore-powered mass lossEccentricityEffective fluxEnergy-limited escape