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Physicists may have solved a 30-year mystery over missing neutrinos

Physicists may have solved a 30-year mystery over missing neutrinos

newscientist.com 18.08.2026 09:00 9 baxış
Since the 1990s, researchers have wondered if unexpected results from gallium-based neutrino detectors are a sign of a new kind of particle, but a new study suggests that revising their calculations could explain the ano

Some missing neutrinos in experiments have been puzzling physicists for more than three decades, but a new theoretical study suggests there may be no mystery after all. Rather than a hint of a new kind of particle, the unexpected result may come down to a calculation oversight, which would reaffirm the laws of particle physics instead of challenging them. Neutrinos are ghostly, slippery particles that are hard to detect and can spontaneously oscillate between their three types.

Since the 1990s, several experiments with gallium-based detectors have found about 20 per cent fewer neutrinos than expected, kickstarting ideas about some neutrinos having turned into a new type of “sterile” neutrino that interacts with matter less and so eludes detection. If this were the case, the standard model of particle physics, which tabulates all existing particles and forces, would have to be amended. Particles seen emerging from empty space for first time Matteo Cadeddu at the University of Cagliari in Italy and his colleagues now propose that such a drastic intervention may not be necessary.

Their calculations show that the problem might lie in the mathematical modelling of the experiments. It all started when Cadeddu was preparing to teach a course on neutrino physics. Anticipating students’ questions, he retraced all the steps of calculations that went into establishing this “gallium anomaly” and found a detail interesting enough to bring to the attention of several colleagues.

To count the neutrinos in the gallium-based detector, researchers measure the interaction between the germanium and the electron, then work backwards. Until now, they have routinely assumed that the quantum wave functions of the electron and the neutrino, which mathematically encode their properties and behaviour, don’t vary across the nucleus of the transmuting atom. This was the detail that Cadeddu and his colleagues focused on.

To their surprise, they discovered that dropping this assumption could account for the reported 20 per cent neutrino deficit, given certain properties of the atom’s nucleus. Strange paraparticles could be reality’s missing ingredient “It is an interesting lead that deserves further study,” says Joachim Kopp at the Johannes Gutenberg University of Mainz in Germany. In his view, attempts to extend the standard model to fit the experiments require “really bizarre and fine-tuned theoretical models”, so the new analysis is more promising.

But details of the nuclear structure of gallium and germanium would have to be independently measured or calculated to fully resolve the neutrino mystery, he says. Ante Ravlić at Michigan State University says the new study is a step in the right direction. However, the work does demonstrate a clear impact of treating the electron and neutrino wave function more rigorously in the possible resolution of the anomaly.” Ravlić expects to see quite a few follow-up studies from nuclear physicists, especially as neutrinos don’t just test the standard model, but are also important for astrophysical processes such as explosions of massive stars.

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