Quintessence: an analytical study, with theoretical and observational applications
Abstract
We focus on minimally coupled (multi)field quintessence models, of thawing type, and their realistic solutions. In a model-independent manner, we describe analytically these cosmological solutions throughout the universe history. Starting with a kination - radiation domination phase, we obtain an upper bound on the scalar potential to guarantee an early kination: . Turning to the radiation - matter phase, we obtain analytic expressions for the scale factor (not ) and the scalar fields (usually neglected). These allow us to evaluate analytically the freezing of scalar fields, typically , as well as the transition moment of the dark energy equation of state parameter from to , with excellent agreement to the numerics. We comment on this freezing in view of string theory model building, and of some cosmological events. Turning to the latest phase of matter - dark energy domination, we show that the (multi)field displacement is sub-Planckian: . We also provide for that phase analytic expressions for in terms of matter evolution; we relate those to observational targets that we propose. Using finally the CPL parametrisation, while discussing a phantom behaviour, we derive analytic bounds on and .
Cite
@article{arxiv.2410.17182,
title = {Quintessence: an analytical study, with theoretical and observational applications},
author = {David Andriot},
journal= {arXiv preprint arXiv:2410.17182},
year = {2025}
}
Comments
A notebook with figures and numerical solutions is provided as an ancillary file. v2: minor additions