The key advance is the resolution. By analyzing momentum transfers in the data, the ALICE team was able to probe structures as small as 0.2 femtometers — roughly one-tenth the size of a single proton . This is the finest resolution ever applied to gluon distributions inside an atomic nucleus.
“At resolutions of 0.6, 0.3 and 0.2 femtometers, ALICE progressively probed smaller regions inside the nucleus,” said University of Kansas nuclear physicist Daniel Tapia Takaki, who led the study . This stair-step approach allowed the team to watch how gluon behavior changes as you zoom in closer and closer.
To interpret the results, the team compared their measurements against two competing theoretical models:
The ALICE data favor gluon saturation over the conventional nuclear shadowing picture . This challenges the shadowing framework that has been the default explanation for nuclear gluon effects since the 1970s.
The study was published in Physical Review Letters in August 2026, with data collected during Run 2 of the Large Hadron Collider (2015–2018) . The ALICE collaboration includes researchers from dozens of institutions worldwide, with the analysis led in part by Tapia Takaki’s group at the University of Kansas
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The result matters because gluons dominate the mass and binding energy of ordinary matter. Understanding how gluons behave at high densities is essential for building a complete theory of the strong nuclear force (quantum chromodynamics, or QCD) and for interpreting a wide range of nuclear and particle physics experiments, including future measurements at the Electron-Ion Collider planned in the United States .