Large-scale Stability and Astronomical Constraints for Coupled Dark-Energy Models
Abstract
We study large-scale inhomogeneous perturbations and instabilities of interacting dark energy (IDE) models. Past analysis of large-scale perturbative instabilities, has shown that we can only test IDE models with observational data when its parameter ranges are either and or and , where is the dark energy equation of state (EoS), and is a coupling parameter governing the strength and direction of the energy transfer. We show that by adding a factor to the background energy transfer, the whole parameter space can be tested against all the data and thus, the instabilities in such interaction models can be removed. We test three classes of interaction model using the latest astronomical data from different sources. Precise constraints are found. Our analysis shows that a very small but non-zero deviation from pure -cosmology is suggested by the observational data while the no-interaction scenario can be recovered at the 68.3% confidence-level. In particular, for three IDE models, identified as IDE 1, IDE 2, and IDE 3, the 68.3% CL constraints on the interaction coupling strengths are, (IDE 1), (IDE 2), (IDE 3). In addition, we find that the dark energy EoS tends towards the phantom region taking the 68.3% CL constraints, (IDE 1), (IDE 2), and (IDE 3). However, the possibility of is also not rejected by the astronomical data used here. Moreover, we find in all IDE models that, as the value of Hubble constant decreases, the behavior of the dark energy EoS shifts from phantom to quintessence type with its EoS very close to that a simple cosmological constant at the present time.
Cite
@article{arxiv.1706.04953,
title = {Large-scale Stability and Astronomical Constraints for Coupled Dark-Energy Models},
author = {Weiqiang Yang and Supriya Pan and John D. Barrow},
journal= {arXiv preprint arXiv:1706.04953},
year = {2018}
}
Comments
18 pages; Some typos are corrected; Abstract has been shortened at the end but the full abstract is kept in the journal version; Published in Phys. Rev. D