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CERN finds gluons behaving strangely deep inside atomic nuclei

CERN finds gluons behaving strangely deep inside atomic nuclei

sciencedaily.com 12.09.2026 17:04 3 views
Physicists at CERN have found a new way to peer deep inside atomic nuclei and distinguish between two competing explanations for how gluons behave. Using the ALICE experiment at the Large Hadron Collider, researchers mea

A CERN experiment has given physicists a much sharper look at how gluons behave inside atomic nuclei, providing new evidence that could help distinguish between two competing explanations of what happens at extremely small scales. University of Kansas physicist Daniel Tapia Takaki played a leading role in the study, which was conducted as part of the ALICE experiment at CERN's Large Hadron Collider and published in Physical Review Letters. The researchers report the first multidimensional measurement of incoherent J/ψ (pronounced "JAY-sigh") photonuclear production that tracks both interaction energy and momentum transfer.

Together, those measurements allow scientists to examine how gluons are distributed inside atomic nuclei with unprecedented detail. Gluons are particles that help bind quarks together through the strong force. Although quarks are commonly described as the fundamental pieces of protons and neutrons, much of the mass of ordinary matter comes from the energy associated with gluons and the strong force.

"Although quarks are often described as the fundamental building blocks of matter, nearly all the mass of the visible universe -- from the atoms in our bodies to the matter inside stars -- actually comes from the energy carried by gluons and the strong force that binds quarks together," said nuclear physicist Daniel Tapia Takaki, professor of physics & astronomy at KU and member of the ALICE collaboration. "Understanding how gluons behave inside nuclei is therefore essential to understanding how matter itself acquires its mass and structure." Tapia Takaki helped lead the research while working closely with scientists at the Czech Technical University in Prague. KU has an institutional partnership with the university that includes exchanges involving both students and researchers.

To examine small variations in the distribution of gluons inside nuclei, the researchers used a technique known as incoherent J/ψ photonuclear production. "The measurements were performed using data collected during Run 2 of the Large Hadron Collider, where fast-moving lead nuclei pass close to one another without directly colliding," Tapia Takaki said. "In these encounters, intense electromagnetic fields surrounding the nuclei behave like beams of high-energy photons.

When one of these photons strikes another nucleus, it can briefly produce a particle called the J/ψ, whose production provides a sensitive probe of the underlying gluon structure." Many measurements effectively average the gluon distribution across an entire nucleus. Incoherent J/ψ production, by contrast, can reveal local changes in gluon density. That makes it possible to investigate structures even smaller than a proton.

The powerful gluon fields inside atomic nuclei are central to the structure of nearly all visible matter, but physicists still do not fully understand how large numbers of gluons behave together. "Our experiments using incoherent production is like switching from a blurry image to a high-resolution microscope," Tapia Takaki said. "This process allows us to see how gluons fluctuate and organize themselves inside nuclei.

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