Lattice determination of the neutrino background for
arXiv:2601.18209 · doi:10.1103/3pm3-vmhh
Abstract
Searching for dark matter is a primary goal of modern astronomy and particle physics. Invisible decays of heavy quarkonia are particularly promising for probing light dark matter, attracting broad interest due to their unique sensitivity. Experiments searching for radiative invisible decays of the have steadily improved upper limits, and upcoming facilities will push sensitivity further--making the precise determination and subtraction of the neutrino background indispensable. Here, we present the first lattice QCD calculation of the Standard Model decay , an irreducible background to . Our result for the branching fraction is , where the first uncertainty is statistical and the second is our systematic estimate. This work advances lattice-based determinations of neutrino backgrounds to quarkonium invisible decays, delivering an ab initio benchmark for . Our approach generalizes to other quarkonium channels (e.g., ) and provides critical theoretical support for dark matter searches at colliders.
8 pages, 5 figures, accepted by PRD
References in corpus (13)
- A Theory of Dark Matter
- Flavor probes of axion-like particles
- Charmonium properties from lattice QCD + QED: hyperfine splitting, leptonic width, charm quark mass and
- Search for Production of Invisible Final States in Single-Photon Decays of Upsilon(1S)
- Search for an axion-like particle in radiative decays
- First-principle calculation of decay width from lattice QCD
- Search for the decay
- Search for a -odd light Higgs boson in
- First lattice QCD calculation of semileptonic decay containing and particles
- The implication of for the effective field theories of neutrino and dark matter
- Analysis of invisible decays in the standard model
- Lattice study of using a method without momentum extrapolation
- Constraints on axion-like particles using lattice QCD calculations of the rate for