3.5 keV X-rays as the "21 cm line" of dark atoms, and a link to light sterile neutrinos
arXiv:1404.3729 · doi:10.1103/PhysRevD.89.121302
Abstract
The recently discovered 3.5 keV X-ray line from extragalactic sources may be evidence of dark matter scatterings or decays. We show that dark atoms can be the source of the emission, through their hyperfine transitions, which would be the analog of 21 cm radiation from a dark sector. We identify two families of dark atom models that match the X-ray observations and are consistent with other constraints. In the first, the hyperfine excited state is long-lived compared to the age of the universe, and the dark atom mass is relatively unconstrained; dark atoms could be strongly self-interacting in this case. In the second, the excited state is short-lived and viable models are parameterized by the value of the dark proton-to-electron mass ratio : for , the dark atom mass is predicted be in the range GeV, with fine structure constant . In either class of models, the dark photon must be massive with 1 MeV and decay into . Evidence for the model could come from direct detection of the dark atoms. In a natural extension of this framework, the dark photon could decay predominantly into invisible particles, for example eV sterile neutrinos, explaining the extra radiation degree of freedom recently suggested by data from BICEP2, while remaining compatible with BBN.
5 pages, 1 figure; v.2: added references, published version, except v.2 includes improved fig. 1
References in corpus (4)
- Resonantly-Produced 7 keV Sterile Neutrino Dark Matter Models and the Properties of Milky Way Satellites
- The 7 keV axion dark matter and the X-ray line signal
- X-ray Lines from Dark Matter: The Good, The Bad, and The Unlikely
- Anomaly-free flavor models for Nambu-Goldstone bosons and the 3.5 keV X-ray line signal
Cited by in corpus (31)
- Discovery of a 3.5 keV line in the Galactic Center and a Critical Look at the Origin of the Line Across Astronomical Targets
- Scattering, Damping, and Acoustic Oscillations: Simulating the Structure of Dark Matter Halos with Relativistic Force Carriers
- Dark-matter bound states from Feynman diagrams
- SIMPle Dark Matter: Self-Interactions and keV Lines
- Hidden Sector Hydrogen as Dark Matter: Small-scale Structure Formation Predictions and the Importance of Hyperfine Interactions
- Generating X-ray lines from annihilating dark matter
- 3.55 keV photon lines from axion to photon conversion in the Milky Way and M31
- Signals from dark atom formation in halos
- X-ray line in Radiative Neutrino Model with Global Symmetry
- A Dynamical Framework for KeV Dirac Neutrino Warm Dark Matter
- Dark atoms and composite dark matter
- Cosmological Implications of Light Sterile Neutrinos produced after the QCD Phase Transition
- Consistency of dark matter interpretations of the 3.5 keV X-ray line
- Decaying Vector Dark Matter as an Explanation for the 3.5 keV Line from Galaxy Clusters
- Nonabelian dark matter models for 3.5 keV X-rays
- 3.5-keV X-ray line from nearly-degenerate WIMP dark matter decays
- X-ray Line from the Dark Transition Electric Dipole
- Non-abelian Dark Matter Solutions for Galactic Gamma-ray Excess and Perseus 3.5 keV X-ray Line
- A 3.55 keV Line from Exciting Dark Matter without a Hidden Sector
- 3.5 keV X-ray line and R-Parity Conserving Supersymmetry
- Saha equilibrium for metastable bound states and dark matter freeze-out
- dark matter-philic Higgs for 3.5 keV X-ray signal
- Indirect searches for dark matter bound state formation and level transitions
- 3.5 keV Galactic Emission Line as a Signal from the Hidden Sector
- Polarization of photons emitted by decaying dark matter
- Bound states of WIMP dark matter in Higgs-portal models. Part I. Cross-sections and transition rates
- Constraining Sterile Neutrino Dark Matter in the Milky Way Halo with Swift-XRT
- Supersymmetric Higgs-portal and X-ray lines
- The Dark Components of the Universe Are Slowly Clarified
- Optical dispersion of composite particles consisting of millicharged constituents
- EDGES of the dark forest: A new absorption window into the composite dark matter and large scale structure