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08/31/2026 | Press release | Distributed by Public on 08/31/2026 13:02

Researchers Develop Method to Tell Authentic Artifacts from Fakes

Published Date

August 31, 2026

Article Content

Key Takeaways

  • Advances in computing power helped scientists create a method for dating pottery purported to be ancient.
  • The method takes advantage of the fact that the firing and cooling of clay materials creates a virtual time stamp within their structures based on the orientation of Earth's magnetic field through time.
  • Now that the method is established, the researchers intend to apply it to artifacts of debated authenticity in museums all over the world.

Museums around the world now have a new tool to distinguish real ancient clay artifacts from fakes.

A research team at UC San Diego's Scripps Institution of Oceanography, led by postdoctoral scholar Yoav Vaknin, found a way to distinguish the magnetism that clay materials acquire over time from the magnetism those materials acquired the day they were made. The researchers found a significant difference between modern and ancient artifacts in the temperature needed to erase the magnetism acquired since the original firing.

"I hope that our new method will be useful for museum curators, who wish to display only authentic artifacts, for archaeologists and historians, studying the societies which created them and for law enforcement authorities in their effort to eliminate illicit antiquities trade, which involves looting archaeological sites and forgery," said Vaknin.

Study lead author Yoav Vaknin with a figurine dated to the Iron Age (1200-600 BCE)

The authors note in the study appearing Aug. 31 in the journal PNAS that a recent prosecution in Israel involving the selling of fake artifacts had been unsuccessful because of a lack of conclusive evidence. Co-author Lisa Tauxe, a geoscientist at Scripps, said the team's technique could be a boon to museums and governments that need to stay one step ahead of forgers. Fakes have been an enduring problem in Israel, China, Mexico - almost every region of the world where archaeological dig sites are to be found - "particularly in places where treachery abounds," said Tauxe.

Pottery fired in kilns takes on the imprint of whatever the Earth's magnetic field is at the time of creation. The magnetic field, or magnetism, of particles in a clay pot created today points to where the Earth's magnetic north pole is today. If a rock cooled 800,000 years ago, when the Earth's magnetic field was reversed, the magnetism of its tiny crystals would point toward the south pole.

But the direction of the magnetic signal in a given sample depends on how it is oriented at the moment. Hold a sample in your hand one way, its signal points north; roll it over, it points south or in any number of other directions. Thus, the direction alone doesn't tell you how old the sample is.

The research team overcame this limitation by first distinguishing two types of magnetism that exist in rocks, clay and other materials. When pottery is fired, that magnetic signals of all the particles tends to point in the direction of the field, and as it cools, the signal of the larger particles stay trapped in this direction forever, creating what is called thermal remanent magnetism. But the signals of the smaller particles never really settle, so their magnetism fluctuates with the vagaries of the magnetic field over time, something called viscous remanent magnetism.

The viscous magnetism can be easily erased by reheating the pottery - and the newer the pottery, the lower the temperature needed. The researchers took a variety of pottery objects - some known to be thousands of years old, some from souvenir shops around Jerusalem, some known to be fakes - and baked them at temperatures starting at 50℃ and increasing in increments of 10 degrees. They determined that if a sample is more than 1,000 years old, the viscous magnetization could be erased only at a temperature above 112℃, while modern samples could be erased at lower temperatures.

Knowledge of these properties has been around for decades among geoscientists, but computing power had long been insufficient to create micromagnetic models that the team used to supplement the lab experiments. The models, which simulated the baking of hypothetical samples over varying periods of time, helped the researchers establish 112℃ as the threshold temperature.

Now that the method is established, the researchers intend to apply it to artifacts of debated authenticity in museums all over the world. It can also be used as proof in court in trials regarding alleged forgery.

The U.S-Israel Binational Science Foundation and the National Science Foundation contributed to the funding of the study.

Besides Vaknin and Tauxe, former Scripps PhD student Brendan Cych and geoscientist Jeff Gee authored the study.

Geoscientist Lisa Tauxe inserts samples into a thermal demagnetizer on the Scripps campus.
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