Pompeii Is Helping Scientists Sharpen the Clocks Used to Date Earth’s History
An ancient catastrophe is helping geologists tell time across billions of years.
by Mihai Andrei · ZME ScienceNearly 2,000 years ago, Pliny the Younger watched Mount Vesuvius erupt across the Bay of Naples, destroying the Roman cities of Pompeii and Herculaneum. The catastrophe became one of the ancient world’s most famous disasters, in part because Pliny left behind a vivid eyewitness account of it.
Now, that account has taken on an entirely new role. The eruption that buried Pompeii has become a calibration point for one of the radioactive clocks scientists use to reconstruct Earth’s history.
A radioactive clock tested against history
Radiometric dating works by turning radioactive decay into a clock. Certain elements change into other elements at predictable rates, so scientists can measure what remains and what has formed to estimate how long a mineral has been sitting there.
Argon-argon dating uses potassium-40, which slowly decays into argon-40. When volcanic minerals cool, that newly produced argon becomes trapped inside them. Over time, more accumulates, giving scientists a way to estimate when the rock formed.
To make that clock easier to read, researchers expose the mineral to neutrons, converting some stable potassium-39 into argon-39. A mass spectrometer can then compare the argon-39 and argon-40 in the same sample and calculate its age with high precision.
But Vesuvius presents an unusually difficult test. Its famous eruption happened only about 2,000 years ago — practically yesterday in geological terms. Potassium-40 has had very little time to decay, so the crystals contain only a tiny amount of newly formed argon-40.
That faint signal is easy to muddy. A little atmospheric argon, or older argon trapped in the mineral when it formed, can push the result off course. In some ways, dating a rock from the Roman Empire is harder than dating one that is billions of years old.
This is why the Vesuvius eruption comes in handy.
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From a century of uncertainty to 13 years
Scientists have tried this test at Vesuvius before.
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In 1997, Paul Renne and colleagues used argon-argon dating on material from the same eruption. They arrived at an age of 1,925 ± 94 years. That fit very well with the historical record, but the uncertainty stretched across nearly a century. If you want to date specific historical events, that’s just too much.
The new result is much tighter.
Renne and his colleagues dated sanidine, a potassium-rich volcanic mineral, from pumice linked to the 79 CE eruption. Their result was 1,938 ± 13 years before the measurements were made in 2025.
“If you want to put together the eruptive history of a volcano in relatively recent time, precision and accuracy really count,” said study leader Paul Renne, a Berkeley professor in residence of earth and planetary science and director of the independent Berkeley Geochronology Center. “The study shows that you can achieve that kind of highly useful precision and accuracy into the historical realm.”
That improvement reflects nearly three decades of better instruments and better methods.
Modern mass spectrometers can detect much smaller quantities of argon than earlier instruments. Researchers have also improved neutron irradiation, calibration standards and corrections for unwanted isotopes produced during the experiment. Together, those advances made it possible to read an extremely young geological clock far more precisely than before.
“It was really just a combination of better samples, instrumental advantage and a more concerted effort. All of those things came together,” Renne added.
And that is where the Vesuvius experiment helps.
Pompeii becomes a calibration point
The real value of the Vesuvius result isn’t that scientists now know that eruption date more precisely. We already know when that eruption happened. What matters is that Vesuvius gives geologists a rare chance to check their radioactive clock against an event where we know the historical age.
Every radiometric dating method depends on knowing exactly how fast its radioactive isotope decays. If that rate is even slightly off, the error carries into every date calculated from it.
Using the Vesuvius benchmark, the researchers refined the decay rate for the branch of potassium-40 that produces argon-40. That helps tighten the calibration of argon-argon dating more broadly.
So, the real benefit is that it helps to date other eruptions. This eruption from 79 CE is helping scientists fine-tune clocks used to date events across Earth’s deep history.
Why better geological clocks matter
Geologists often care less about the exact age of a rock than about the order of events. Did one eruption happen before another? Did climate change begin before a mass extinction, or after it? Did two events happen far apart, or close enough in time to be linked?
Better dating helps answer those questions.
Argon-argon dating has already been used to study major moments in Earth history, including the asteroid impact and mass extinction that ended the age of the dinosaurs 66 million years ago. In cases like that, even small improvements in precision can help scientists build a clearer timeline of what happened and when.
The advance also matters for younger volcanoes.
Many volcanoes do not have written records stretching back thousands of years. Scientists have to piece together their histories from old lava flows, ash layers and pumice deposits. If those deposits can be dated more precisely, researchers can get a much clearer picture of how often a volcano erupted and how its behavior changed over time.
In that sense, Pompeii is helping scientists build better timelines for the history of Earth.
The study was published in Science Advances.