Exploring the full parameter space for an interacting dark energy model with recent observations including redshift-space distortions: Application of the parametrized post-Friedmann approach
Yun-He Li, Jing-Fei Zhang, Xin Zhang

TL;DR
This paper uses a new parametrized post-Friedmann framework to explore the full parameter space of an interacting dark energy model, constrained by recent observations including redshift-space distortions, revealing a preference for negative coupling.
Contribution
It introduces a PPF framework that overcomes previous instability issues, enabling comprehensive exploration of the IDE model's parameter space with observational data.
Findings
RSD data significantly reduces the uncertainty in the coupling parameter
Negative coupling $eta$ is favored by current observations
Larger interaction rates are compatible with RSD data
Abstract
Dark energy can modify the dynamics of dark matter if there exists a direct interaction between them. Thus a measurement of the structure growth, e.g., redshift-space distortions (RSD), can provide a powerful tool to constrain the interacting dark energy (IDE) models. For the widely studied model, previous works showed that only a very small coupling () can survive in current RSD data. However, all these analyses had to assume and due to the existence of the large-scale instability in the IDE scenario. In our recent work [Phys. Rev. D 90, 063005 (2014)], we successfully solved this large-scale instability problem by establishing a parametrized post-Friedmann (PPF) framework for the IDE scenario. So we, for the first time, have the ability to explore the full parameter space of the IDE models. In this work, we…
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