Dark sector interactions in the $w \rightarrow -1$ limit: velocity locking in pure momentum exchange models
Nathan Cruickshank, Robert Crittenden, Kazuya Koyama, Marco Bruni

TL;DR
This paper investigates pure momentum exchange models of interacting dark energy and dark matter near the $w ightarrow -1$ limit, revealing a velocity-locking mechanism that affects matter power spectrum suppression and impacts observational constraints.
Contribution
It uncovers a $w$-dependent velocity-locking mechanism in these models and shows how neglecting DE perturbations leads to inaccurate constraints on interaction strength.
Findings
Velocity-locking shifts power suppression to smaller scales as $w ightarrow -1$
Interaction drag causes DE velocity to track DM at large scales
Neglecting DE perturbations overestimates constraints on interaction strength
Abstract
Models of interacting dark energy (DE) and dark matter (DM) involving pure momentum exchange are a promising avenue for resolving cosmological tensions. However, the behaviour of these interactions in the theoretically challenging limit where the DE equation of state, , approaches is not fully understood. We demonstrate that a generic feature of these models is a -dependent velocity-locking mechanism, which systematically shifts the onset of matter power spectrum suppression to smaller scales as . The suppression magnitude depends on the difference in fluid velocities. In this limit, however, the interaction's drag dominates over the DE pressure support and causes the DE velocity to track that of the DM fluid at larger scales. This mechanism provides a physical explanation for the weaker constraints found in the literature when in models where…
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Taxonomy
TopicsCosmology and Gravitation Theories · Dark Matter and Cosmic Phenomena · Galaxies: Formation, Evolution, Phenomena
