IB Physics SLTopic 5 — Fusion & StarsPaper 1 & 2Mass decides the fate~9 min read
The Life Cycle of a Star
A star can’t burn forever. Sooner or later its fuel runs low, the careful balance breaks, and the star begins to die. But not every star dies the same way. One single property decides its whole future — its mass. A lightweight star like the Sun fades quietly; a heavyweight goes out in the most violent explosion in the universe.
📘 What you need to know
Every star begins the same way: nebula → protostar → main sequence star
A star spends most of its life on the main sequence, fusing hydrogen into helium in equilibrium
What happens next depends entirely on the star’s mass
Low-mass stars (like the Sun): main sequence → red giant → planetary nebula → white dwarf
High-mass stars: main sequence → red supergiant → supernova → neutron star or black hole
Massive stars fuse heavier elements, all the way up to iron, before their core collapses
The final remnant depends on the leftover core’s mass: white dwarf, neutron star, or (above ~3 solar masses) a black hole
The Shared Beginning
However a star ends up, it starts the same way. Gravity collapses a nebula into a hot protostar; once the core is hot and dense enough, fusion ignites and it becomes a stable main sequence star. This is where a star spends the vast majority of its life — around 90% of all stars are on the main sequence right now, quietly fusing hydrogen into helium.
nebula
→
protostar
→
main sequence star
→ then the paths split →
low-mass or high-mass?
The Sun has been on the main sequence for about 4.6 billion years and will stay there for roughly another 5 billion. When a star’s core finally runs low on hydrogen, its equilibrium breaks — and the fork in the road appears.
The one thing to burn into memory: mass decides everything. If an exam question tells you a star is “similar to the Sun” or “low-mass,” follow the left-hand path. If it says “much more massive than the Sun,” follow the right-hand path. Get that split right and the marks follow.
The Fork: Mass Decides the Fate
Here’s the whole life cycle in one picture. Everything runs the same until the end of the main sequence, then splits into two very different endings depending on mass.
Every star shares the same start; at the end of the main sequence, mass sends it down the low-mass (left) or high-mass (right) path.
Low-Mass Stars (like the Sun)
Follow a Sun-sized star past the main sequence and it moves through three stages: red giant → planetary nebula → white dwarf.
Red giant
When the hydrogen in the core runs out, fusion there slows and the outward pressure drops, so the core contracts and heats up. Hydrogen fusion continues in a shell around the core, and eventually the core gets hot enough for helium fusion to begin. The huge energy release pushes the outer layers outward, and they swell and cool to form a red giant — large, and red because its surface has cooled.
Planetary nebula & white dwarf
The helium supply eventually runs out too. The core contracts again but can’t get hot enough for any further fusion. The star’s outer layers drift away into space, forming a planetary nebula (nothing to do with planets — just an old name). What’s left is the exposed core, which collapses under gravity into a very hot, dense remnant called a white dwarf.
main sequence
→ H runs out →
red giant
→ layers ejected →
planetary nebula
→ core left →
white dwarf
High-Mass Stars
A star much heavier than the Sun lives fast and dies hard: red supergiant → supernova → neutron star or black hole.
Red supergiant
It begins much like a red giant, but because there’s so much more mass, the core reaches far higher temperatures. This lets it run through successive rounds of shell-burning and core-burning, fusing heavier and heavier elements — carbon, oxygen, and on up to iron. Iron is the end of the line: fusing iron absorbs energy rather than releasing it, so once the core is iron, fusion can no longer support the star.
Supernova & remnant
With no fusion to hold it up, the iron core collapses catastrophically. The outer layers rush inward, rebound, and are blown off in a colossal explosion called a supernova — briefly outshining an entire galaxy. What remains of the core depends on its mass:
🧭 What’s left after a supernova
Neutron star — if the remnant core survives intact, it forms an extremely dense neutron star
Black hole — if the remnant core is more than about 3 solar masses, gravity is so strong that nothing stops the collapse, and it becomes a black hole
Quick recap: all stars start nebula → protostar → main sequence; then low-mass stars become a red giant → planetary nebula → white dwarf, while high-mass stars become a red supergiant → supernova → neutron star or black hole.
WE 1
A star similar in mass to the Sun reaches the end of the main sequence. Describe and explain the remaining stages of its evolution.
Red giant
hydrogen in the core runs out, so core fusion slows and pressure drops
the core contracts and heats; H fusion continues in a shell, then helium fusion begins
the energy released makes the outer layers swell and cool
→ the star becomes a red giantPlanetary nebula
helium runs out; the core can’t get hot enough for further fusion
the outer layers are ejected into space
→ forming a planetary nebulaWhite dwarf
the remaining hot, dense core collapses under gravity
→ leaving a white dwarf
WE 2
Two stars, P and Q, both leave the main sequence. Star P has a mass similar to the Sun; star Q is 20 times the Sun’s mass. (a) State the final remnant of each star. (b) Explain why star Q can fuse heavier elements than star P.
Part (a)
star P (low mass) → ends as a white dwarf
star Q (high mass) → ends as a neutron star or black hole
(black hole if the remnant core > ~3 solar masses)Part (b)
star Q has far greater mass, so gravity compresses its core more
this produces much higher core temperatures and pressures
enough to fuse elements up to iron→ star P’s core never gets hot enough to go beyond helium/carbon
💡 Top tips
Memorise the two chains as a pair: “giant → nebula → dwarf” for low mass; “supergiant → supernova → neutron star / black hole” for high mass
Match the language: low-mass gets a red giant and planetary nebula; high-mass gets a red supergiant and a supernova. The “super” tells you it’s the massive path
Iron is the stopping point for fusion in massive stars — you don’t get energy from fusing iron
The remnant depends on the core mass: quote the ~3 solar mass threshold for the neutron-star-vs-black-hole split
⚠ Common mistakes
Mixing the two paths — a Sun-like star does not go supernova, and a massive star does not end as a white dwarf
Confusing nebula (star-forming cloud) with planetary nebula (ejected layers of a dying low-mass star)
Saying massive stars fuse “all elements” — core fusion stops at iron
Forgetting the mass condition for a black hole — it’s the remnant core mass, not the original star’s mass, that must exceed ~3 solar masses
Up next: The Hertzsprung–Russell (HR) Diagram — a single chart that plots every type of star we’ve just met (main sequence, giants, supergiants, white dwarfs) by brightness and temperature, so you can read a star’s type straight off the graph.
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