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Weighing neutrinos by watching galaxies dance ⚡ экспресс

Original: "Measuring neutrino mass and asymmetry through galaxy pairwise peculiar velocity"
arXiv:2604.19922 · 2026-04-21 · CC BY · ⏱ 1 min · Cosmology
The motion of paired [tag:galaxy]galaxies[/tag] has allowed, for the first time, an estimate of neutrino mass and revealed an imbalance between particles and antiparticles.
Abstract

Neutrinos are ghostly particles that fill the cosmos, but their mass and 'asymmetry' (the imbalance between particles and antiparticles) have remained a mystery. Scientists have for the first time used the motion of galaxies—like ripples on water from an unseen wind—to weigh neutrinos and assess this imbalance. It turns out the asymmetry is definitely there, and the mass is tiny. What else will the dance of galaxies tell us?

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Neutrinos are the most abundant massive particles in the universe. Trillions of them pass through us every second, yet they leave barely a trace. Their collective gravity, though tiny, can influence the motion of entire galaxies. Think of two people approaching each other on a busy street; invisible passersby alter their speed. Similarly, for galaxy pairs, neutrinos act as those unseen passersby, subtly distorting their motion. Comparing with computer simulations yielded a total mass of about 0.24 electronvolts and, more surprisingly, exposed an imbalance: more neutrinos than antineutrinos. This skew contradicts the simplest versions of the Standard Model and calls for new physics.

Right now, in every cubic centimeter of space, about 300 relic neutrinos are zipping through – echoes of the Big Bang.

Such an excess of neutrinos in the early universe could have been a hidden factor steering the growth of galaxy clusters. The method opens a way to study neutrino properties without giant accelerators – simply by watching the dance of galaxies.

🎯 A single neutrino is a million times lighter than an electron, but there are a billion times more neutrinos than atoms in the universe.

Scientists
Alan GuthAndrei LindeGeorges LemaîtreJames PeeblesAdam RiessBrian Schmidt
Tags
galaxy big bang dark matter Standard Model
Laws
Friedmann equationsHubble's lawgravitational lensingNoether's theoremEinstein field equationsPlanck's law
Original: arXiv:2604.19922 · CC BY · bridge42worlds