The bumblebee field excitations in a cosmological braneworld
Abstract
We investigated the effects of the spacetime curvature and extra dimensions on the excitations of a self-interacting vector field known as the bumblebee field. The self-interacting quadratic potential breaks the gauge invariance and the vacuum expectation value (VEV) of the bumblebee field violates the local particle Lorentz symmetry. By assuming the bumblebee field living in a bulk, we found an exponential suppression of the self-interacting constant and the bumblebee VEV along the extra dimension. The fluctuations of the bumblebee upon the VEV can be decomposed into transverse and longitudinal modes with respect to . Despite the curvature, the transverse mode acquires massive Kaluza-Klein towers, while the longitudinal mode acquires LV mass . On the other hand, the current conservation law prevents massive Kaluza-Klein modes for the longitudinal mode. For a spacelike along the extra dimension and assuming a FRW 3-brane embedded in the yields to an additional dissipative term to the longitudinal mode. The cosmological expansion leads to decay of the longitudinal mode in a time , where is the Hubble parameter and is the scale factor. For a timelike , the longitudinal mode does not propagate on the brane and its amplitude decays in time with and in the extra dimension with .
Keywords
Cite
@article{arxiv.2108.01138,
title = {The bumblebee field excitations in a cosmological braneworld},
author = {L. A. Lessa and J. E. G. Silva and C. A. S. Almeida},
journal= {arXiv preprint arXiv:2108.01138},
year = {2021}
}
Comments
15 pages, no figure