E.5.4—Stellar mass and evolution
- Syllabus
- First assessment 2025
- Objective
- —
- Level
- HL
Start when core hydrogen is depleted
Reduced core fusion lowers outward pressure, so gravity contracts and heats the core. Hydrogen shell fusion then expands the outer layers: lower-mass stars become red giants, while high-mass stars become red supergiants.
| Initial mass | Later pathway | Final remnant |
|---|---|---|
| Lower or Sun-like | Main sequence → red giant → planetary nebula | White dwarf |
| High mass | Main sequence → red supergiant → supernova | Neutron star or, for a sufficiently massive remnant, black hole |
Connect mass to lifetime
A more massive main-sequence star has more fuel, but its fusion rate and luminosity rise much more strongly. It therefore uses core hydrogen faster and has a shorter main-sequence lifetime.
Keep the path conditional
Mass controls the pathway; not every star becomes a supernova, and not every supernova leaves a black hole. A planetary nebula is expelled gas from a red giant, not a planet-forming stage.
Questions compare main-sequence lifetimes or describe stages after a massive star leaves the main sequence.
Describe / Compare
Link mass to luminosity and lifetime, then give the ordered evolution and conditional remnant endpoint.
Giving the evolution sequence without the mass/luminosity reasoning or naming only one remnant without its condition.
Retrieve stellar balance
Fusion releases energy, outward thermal/radiation pressure balances inward gravity, and high temperature and density allow fusion in the core.
Retrieve stellar inference
Mass controls evolution; HR regions classify stars; parallax gives distance; and L=4πR2σT4 gives stellar radius from luminosity and temperature.