IB ESS HL 3.1 Biodiversity & Evolution HL only ~13 min read

The Five Mass Extinctions

Five times, life on Earth has come close to ending. The worst of them killed 96% of marine species. Each one also cleared the way for whatever came next — which is why mammals, and eventually us, exist at all.

📘 What you need to know

What counts as a mass extinction

Definition Mass extinction — a widespread and rapid decrease in the diversity of life on Earth, in which a significant proportion of species die off in a relatively short period. At least 75% of species are wiped out.

Each of the five has significantly reshaped life on the planet.

Five events, and how much they took Bar height shows the percentage of species lost 85% 444 Ma Ordovician- Silurian 75% 375 Ma Late Devonian 96% 252 Ma Permian- Triassic 80% 201 Ma Triassic- Jurassic 75% 66 Ma Cretaceous- Paleogene the Great Dying The 75% threshold is what makes an extinction a mass extinction Every one of the five clears that bar
Bars are positioned by date along the 500-million-year axis. The Permian-Triassic stands out on both measures: worst losses, and the boundary between two eras.

The five events

EventWhenLossesPossible causes
1. Ordovician-Silurianapprox. 444 MaAround 85% of marine species. The first mass extinction, mainly affecting marine life since most species lived in the oceansClimate change (glaciation and global cooling); sea level drop reducing habitat space for marine species
2. Late Devonianapprox. 375 Ma75% of all species, including many corals and fish. Took place over millions of years, impacting marine ecosystemsVolcanic activity leading to climate change; decreased oxygen levels in the oceans (hypoxia)
3. Permian-Triassic
the “Great Dying”
approx. 252 MaThe most severe: 96% of marine species and around 70% of land speciesMassive volcanic eruptions in what is now Siberia, releasing huge amounts of carbon dioxide causing global warming and ocean acidification; possibly worsened by methane released from melting ice
4. Triassic-Jurassicapprox. 201 MaAround 80% of all species. Followed by the dominance of dinosaursVolcanic activity linked to the breakup of the supercontinent Pangaea, and the resulting climate change and sea-level rise
5. Cretaceous-Paleogeneapprox. 66 MaAround 75% of species, including all non-avian dinosaurs, pterosaurs and ammonitesA large meteorite impact at the Chicxulub crater, Yucatán Peninsula, Mexico, causing fires, tsunamis and dust clouds that blocked sunlight; massive volcanic activity in India may have contributed

What causes mass extinctions

Five causes, one common outcome Most of them end by disrupting photosynthesis and food chains TECTONICS plate movements reshape continents, reduce shallow seas VOLCANOES ash and gases block sunlight, causing a volcanic winter CLIMATE cooling shrinks marine habitats; warming brings acidification SEA LEVEL falls expose shallow seas; rises flood terrestrial habitats METEORITE dust and debris block sunlight for months or years less sunlight reaching the surface photosynthesis fails, food chains collapse, ecosystems follow Producers die first, and everything above them starves
Explaining this shared mechanism turns a list of causes into a proper explanation, which is what the higher mark bands ask for.

Tectonic plate movements

Tectonic plates are large slabs of Earth’s crust that move over time, reshaping continents and oceans. Their movement causes habitat loss by altering land masses and changing ecosystems. The formation of supercontinents such as Pangaea combined previously separated land masses, reducing coastal areas and shallow seas — which are rich in biodiversity — and causing widespread species loss, particularly in marine environments. Plate movements can also trigger volcanic activity and earthquakes.

Super-volcanic eruptions

Super-volcanoes release massive amounts of ash, lava and gases such as sulfur dioxide and carbon dioxide. This can block sunlight, producing a temporary cooling known as a volcanic winter. Reduced sunlight kills plants, disrupting food chains and collapsing entire ecosystems. The Siberian Traps eruptions at the end of the Permian released enough gas and ash to make global temperatures plummet and to acidify the oceans.

Climate change

Mass extinctions can be caused by both global cooling and global warming.

Sea-level changes

Fluctuating sea levels drastically reduce or expand habitats, particularly for marine species. A decline exposes shallow seas and coastal habitats, reducing space for organisms that depend on them — especially destructive for coral reefs and mangroves. A rise floods terrestrial areas, displacing land species.

Meteorite impact

Large meteorites cause massive destruction globally. The immediate impact creates shockwaves and fires, but the longer-term damage comes from dust and debris thrown into the atmosphere, which can block sunlight for months or years. This cools the planet and disrupts photosynthesis, breaking down food chains.

What happens afterwards

After a mass extinction, many ecological niches become available because the species that occupied them are gone. Surviving species then undergo rapid evolution to fill those empty niches, which is why periods of rapid speciation frequently follow mass extinctions.

The example that matters to us. After the Cretaceous-Paleogene extinction removed the non-avian dinosaurs, mammals diversified and evolved into many new species — leading eventually to the rise of humans. Without that extinction, the niches mammals expanded into would still have been occupied.

The sixth mass extinction

Anthropogenic means caused by humans. Scientists believe a sixth mass extinction has begun, driven by human activities:

Make sure you can explain how each factor contributes, not just name it. The strongest answers show the mechanism: volcanic ash blocks sunlight, so plants die, so food chains collapse. Notice too that the sixth extinction differs from the previous five in one important respect — its cause is a species that could, in principle, choose to stop.

Worked examples

WE 1

Defining a mass extinction

Define mass extinction and state how many have occurred. (2 marks)

The definition A widespread and rapid decrease in the diversity of life on Earth, in which a significant proportion of species die off in a relatively short period. At least 75% of species are wiped out. The number There have been five major mass extinctions in Earth’s history, each significantly reshaping life on the planet. 75% of species lost, five times over the 75% threshold is the quantitative detail examiners look for
WE 2

Explaining a cause

Explain how super-volcanic eruptions can cause a mass extinction. (4 marks)

Step 1: what is released Super-volcanoes release massive amounts of ash, lava and gases such as sulfur dioxide and carbon dioxide. Step 2: the immediate effect Ash and gases block sunlight, producing a temporary global cooling known as a volcanic winter. Step 3: the ecological effect Reduced sunlight causes plants to die off, disrupting food chains and leading to the collapse of entire ecosystems. Step 4: the example The Siberian Traps eruptions at the end of the Permian released enough gas and ash to make temperatures plummet and to acidify the oceans, contributing to the Great Dying. Ash blocks light, producers die, food chains collapse the mechanism, not the event, is what earns the marks
WE 3

After an extinction

Explain why periods of rapid speciation often follow mass extinctions. (3 marks)

Step 1: niches are emptied A mass extinction removes a large proportion of species, so many ecological niches become available. Step 2: surviving species expand Surviving species face reduced competition and undergo rapid evolution to fill those empty niches. Step 3: the example After the Cretaceous-Paleogene extinction removed the non-avian dinosaurs, mammals diversified into many new species, leading eventually to the rise of humans. Empty niches plus reduced competition equals rapid diversification the mammal example connects the whole page to why humans exist

💡 Exam tips

⚠ Common mistakes

Up next: The Anthropocene. If a sixth mass extinction is under way and humans are causing it, the question becomes whether our impact is large enough to mark a new division of the geological timescale itself.

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