Spontaneous Peccei-Quinn symmetry breaking renders sterile neutrino, axion and \(\chi\) boson to be candidates for dark matter particles
DOI10.1016/J.NUCLPHYSB.2022.115817zbMath1497.83063arXiv2012.04648OpenAlexW4225394082MaRDI QIDQ2144919
Publication date: 17 June 2022
Published in: Nuclear Physics. B (Search for Journal in Brave)
Full work available at URL: https://arxiv.org/abs/2012.04648
Unified quantum theories (81V22) Relativistic cosmology (83F05) Other elementary particle theory in quantum theory (81V25) Strong interaction, including quantum chromodynamics (81V05) Symmetry breaking in quantum theory (81R40) Weak interaction in quantum theory (81V15) Dark matter and dark energy (83C56) Particle exchange symmetries in quantum theory (general) (81V72) Particle decays (81U90)
Related Items (2)
Uses Software
Cites Work
- Dirac or inverse seesaw neutrino masses with \(B - L\) gauge symmetry and \(S_3\) flavor symmetry
- Production of purely gravitational dark matter
- Unbroken \(B-L\) symmetry
- Gravitational production of superheavy dark matter and associated cosmological signatures
- Why is the top-quark much heavier than other fermions?
- Package-X: a Mathematica package for the analytic calculation of one-loop integrals
- Particles and Quantum Fields
- Local conformal symmetry in black holes, standard model, and quantum gravity
- Neutrino Mass and Spontaneous Parity Nonconservation
- Measurement of the fine-structure constant as a test of the Standard Model
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