The circumstellar habitable zone is the range of orbital distances around a star where a rocky planet could hold liquid water on its surface — not so hot that oceans boil away in a runaway greenhouse, not so cold that they freeze solid. Because a star's radiated energy falls off with the square of distance, the habitable zone's inner and outer edges scale with the square root of the star's luminosity.
√L (luminosity in solar units), so a brighter star pushes its whole habitable band farther out.Earth sits comfortably inside the Sun's conservative habitable zone at 1 AU, but climate models suggest the inner edge may lie as close as 0.95 AU and the outer edge near 1.7 AU — meaning our own planet has less margin than it might seem.
An interactive 3D star system where dialing a star's luminosity up or down redraws the habitable-zone band, while dragging a planet through it reveals whether starlight would leave its surface boiling, frozen, or holding liquid water.
The habitable zone's inner and outer edges scale with the square root of stellar luminosity, since flux falls off with distance squared. Planet albedo and orbital distance jointly set the equilibrium surface temperature.
Adjust the star's luminosity, the planet's orbital distance and albedo, and switch between conservative and optimistic habitable-zone models. Watch the green band and the planet's status update in real time.
A star just twice as luminous as the Sun pushes its entire habitable zone roughly 40% farther out — which is why searches for Earth-like exoplanets weight a star's brightness as heavily as a planet's size.