Millicharged Scalar Fields, Massive Photons and the Breaking of
arXiv:1711.04534 · doi:10.1103/PhysRevD.99.073009
Abstract
Under the assumption that the current epoch of the Universe is not special, i.e. is not the final state of a long history of processes in particle physics, the cosmological fate of is investigated. Spontaneous symmetry breaking of at the temperature of the Universe today is carried out. The charged scalar field which breaks the symmetry is found to be ruled out for the charge of the electron, . Scalar fields with millicharges are viable and limits on their masses and charges are found to be and . Furthermore, it is possible that has already been broken at temperatures higher than given the nonzero limits on the mass of the photon. A photon mass of , the current upper limit, is found to require a spontaneously symmetry breaking scalar mass of with charge , well within the allowed parameter space of the model. Finally, the cosmological fate of the strong interaction is studied. is tested for complementarity in which the confinement phase of QCD colored scalars is equivalent to a spontaneously broken gauge theory. If complementarity is not applicable, has multiple symmetry breaking paths with various final symmetry structures. The stability of the colored vacuum at finite temperature in this scenario is nonperturbative and a definitive statement on the fate of is left open. Cosmological implications for the metastability of the vacua - electromagnetic, color and electroweak - are discussed.
7 pages. Version accepted for publication in PRD
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