Non-singular bounce scenarios in loop quantum cosmology and the effective field description
Abstract
A non-singular bouncing cosmology is generically obtained in loop quantum cosmology due to non-perturbative quantum gravity effects. A similar picture can be achieved in standard general relativity in the presence of a scalar field with a non-standard kinetic term such that at high energy densities the field evolves into a ghost condensate and causes a non-singular bounce. During the bouncing phase, the perturbations can be stabilized by introducing a Horndeski operator. Taking the matter content to be a dust field and an ekpyrotic scalar field, we compare the dynamics in loop quantum cosmology and in a non-singular bouncing effective field model with a non-standard kinetic term at both the background and perturbative levels. We find that these two settings share many important properties, including the result that they both generate scale-invariant scalar perturbations. This shows that some quantum gravity effects of the very early universe may be mimicked by effective field models.
Cite
@article{arxiv.1402.3009,
title = {Non-singular bounce scenarios in loop quantum cosmology and the effective field description},
author = {Yi-Fu Cai and Edward Wilson-Ewing},
journal= {arXiv preprint arXiv:1402.3009},
year = {2014}
}
Comments
12 pages, 5 figures, v2: references added