Flipped rotating axion: Baryogenesis and Dark Matter
Konstantinos Dimopoulos
hep-ph, astro-ph.CO, gr-qc, hep-th
Submitted: 2026-07-03
Comments: 11 pages, 5 figures, Proceedings of the Corfu Summer Institute 2025 "School and Workshops on Elementary Particle Physics and Gravity" (CORFU2025)
License: http://creativecommons.org/licenses/by/4.0/
The gist: It is shown that the co-genesis of baryon asymmetry and dark matter can be achieved through the rotation of a spectator axion-like particle, because of a flip in the vacuum manifold's orientation at
Terminology
Abstract
It is shown that the co-genesis of baryon asymmetry and dark matter can be achieved through the rotation of a spectator axion-like particle, because of a flip in the vacuum manifold's orientation at the end of inflation. This can occur if the axion has a periodic non-minimal coupling to gravity (while preserving the discrete shift symmetry) in non-oscillating inflation models, where the inflaton field is characterised by a runaway potential. Our rotating axion can generate the baryon asymmetry of the Universe through spontaneous baryogenesis, while at a later epoch it can oscillate as dark matter. We show that in order to avoid fragmentation of the axion condensate during the rotation, we require the non-minimal coupling xi about(f/m P) squared, where f is the axion decay constant.
Sources
- Axiogenesis
- String Axiverse
- Flipped Rotating Axion Non-minimally Coupled to Gravity: Baryogenesis and Dark Matter
- Natural Inflation with a periodic non-minimal coupling
- Natural-Scalaron Inflation
- Post-inflationary production of particle Dark Matter: non-minimal Natural and Coleman--Weinberg inflationary scenarios
- Non-minimal gravitational reheating during kination
- Ricci Reheating
- Hubble-induced phase transitions on the lattice with applications to Ricci reheating
- Spontaneous Baryogenesis from Axions with Generic Couplings
- Kination cosmology from scalar fields and gravitational-wave signatures
- Ability of LIGO and LISA to probe the equation of state of the early Universe
- Enhanced primordial gravitational waves from a stiff post-inflationary era due to an oscillating inflaton
- Gravitational Wave Experiments and Early Universe Cosmology
- Relating gravitational wave constraints from primordial nucleosynthesis, pulsar timing, laser interferometers, and the CMB: implications for the early universe
- Cosmological Backgrounds of Gravitational Waves
- Axion Fragmentation
- ALP Dark Matter from Kinetic Fragmentation: Opening up the Parameter Window
- ALP Dark Matter Mini-Clusters from Kinetic Fragmentation
- Stochastic Dynamics of Coarse-Grained Quantum Fields in Inflationary Universe
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