The flavor vacuum in the expanding universe and dark matter
arXiv:2111.05051 · doi:10.1103/PhysRevD.105.105013
Abstract
We analyze fermion mixing in the framework of field quantization in curved spacetime. We compute the expectation value of the energy momentum tensor of mixed fermions on the flavor vacuum. We consider spatially flat Friedmann-Lemaitre-Robertson-Walker metrics, and we show that the energy momentum tensor of the flavor vacuum is diagonal and conserved. Therefore it can be interpreted as the effective energy momentum tensor of a perfect fluid. In particular, assuming a fixed De Sitter background, the equation of state of the fluid is consistent with that of dust and cold dark matter. Our results establish a new link between quantum effects and classical fluids, and indicate that the flavor vacuum of mixed fermions may represent a new component of dark matter.
22 pages, 2 figures
References in corpus (12)
- A direct empirical proof of the existence of dark matter
- Beyond the Cosmological Standard Model
- Dark Energy and Dark Gravity
- Dark matter local density determination: recent observations and future prospects
- Neutrino Oscillations as a Probe of Light Scalar Dark Matter
- Indirect dark matter searches in Gamma- and Cosmic Rays
- Neutrino mixing as a source of dark energy
- Dark energy and particle mixing
- Axion-photon mixing in quantum field theory and vacuum energy
- Neutron Interferometry and axion like particles
- Dark matter and dark energy induced by condensates
- Neutrinos, Grand Unification and Leptogenesis
Cited by in corpus (7)
- Boson mixing and flavor vacuum in the expanding Universe: a possible candidate for the dark energy
- Neutrino capture on tritium as a probe of flavor vacuum condensate and dark matter
- Boson mixing and flavor oscillations in curved space-time
- On the Geometric Phase and Majorana Neutrinos
- Neutrinos, mixed bosons, Quantum Reference Frames and entanglement
- Fermion mixing in curved spacetime
- Axion like particles, fifth force and neutron interferometry