Text settings Story text Size Small Standard Large Width * Standard Wide Links Standard Orange * Subscribers only Learn more Minimize to nav Physicists with the Beijing Spectrometer III (BES III) experiment have uncovered convincing new evidence of the existence of so-called glueballs, an elusive composite particle made entirely of gluons predicted by quantum theory. The results appeared in a preprint posted to arXiv last month and were also presented last week at the International Conference on High Energy Physics (ICHEP).
All the stuff we see around us is made up of quarks held together by gluons (carriers of the nuclear strong force) to form protons and neutrons, which comprise the core of every single atom. The Higgs boson, discovered in 2012 after decades of searching, was widely touted as the final missing piece of the Standard Model of Particle Physics. But there are still plenty of unanswered questions, including whether or not glueballs really exist. They should, if the Standard Model is correct; they’re a direct prediction of quantum chromodynamics, i.e., the theory of the strong nuclear force. There should even be several kinds of glueballs.
As Matthew Francis wrote for Ars in 2015:
Just like the Higgs boson, glueballs are part of the reason that matter has mass. The Higgs boson is a manifestation of the “Higgs field,” which is present throughout the Universe. Quarks, electrons, and other fundamental particles would be mass-free in a Higgsless cosmos, but when they interact with that field, they pick up mass. In contrast, most of the mass of protons and neutrons doesn’t come from quarks; it comes from the “glue” holding them together.
Gluons are the reason for that glue (they are named “glue-ons,” after all). Though they don’t have mass, the energy involved in binding everything together inside a proton is huge, and a lot of that energy takes the form of mass thanks to E=mc2. Without gluons, protons wouldn’t exist, much less be as massive as they are. But there’s another side effect: gluons stick to each other, not just to quarks. That means it could be possible to build a particle out of just gluons, with no quarks needed—that’s the glueball.
There is a dizzying array of subatomic particles in the particle zoo. Of particular relevance to the hunt for glueballs is the so-called J/ψ particle discovered in 1974, a meson consisting of one charm quark and one charm antiquark. When those particles decay, they produce a lot of gluons and composite particles known as hadrons in the process, so physicists have long thought that this was the best experimental regime in which to search for glueball signatures. According to astrophysicist Ethan Siegel, for a particle to be considered a possible glueball, it must have zero spin, no electric charge, and odd parity, among other properties.
Enter the BES III experiment, an electron-positron collider specifically designed to study J/ψ particles for telltale glueball signatures. The updated collider began collecting data in 2008 and within a year had recorded over 226 million events. One of the strongest candidates for the lightest glueball state is the X(2370) particle, discovered in 2011 at BES III. As its name implies, the mass initially was measured at 2.370 GeV/C2, a bit shy of the 2.395 GeV/C2 predicted by lattice QCD theory.
By 2024, the number of recorded events exceeded 10 billion J/ψ particles. That made it statistically more likely that the experiment would pick up rare events and exotic states like XYZ mesons and tetraquarks, as well as a lot of X(2370) particles, so it was possible to measure the latter’s properties more accurately than ever before.
BES III physicists ended up with a predicted mass of 2.395 GeV/C2, an impressive agreement between experiment and theoretical predictions for a glueball. Its spin and parity were also consistent with QCD. It still wasn’t quite enough to unambiguously declare the discovery of the first glueball. But it was the strongest evidence yet found for the existence of glueballs—until now.
These latest results looked at several previously unreported decay modes of X(2370). Analysis revealed that X(2370) is a “flavor singlet,” i.e., it’s not associated with one particular quark flavor, such as up, down or strange, a vital experimental clue in support of this being a particle comprised predominantly of gluons. (The collaboration estimates it’s comprised of about 90 percent gluons.) That means that X(2370) matches the three primary predicted properties for a glueball, which the BES III team considered a complete chain of evidence.
“It’s an experimental triumph,” Colin Morningstar, a particle physicist at Carnegie Mellon University who was not involved in the research, told Science. “It’s the strongest evidence yet that particles dominated by a glueball component can exist in nature.” The next step is for other groups to independently verify the results—perhaps at the proposed Super Tau-Charm Facility (STCF) in China or the Electron-Ion Collider under construction at Brookhaven National Laboratory in the US. BES III is currently the only machine devoted exclusively to hunt for gluons, so independent confirmation could take a while.
arXiv, 2026. DOI: 10.48550/arXiv.2607.20366 (About DOIs).