Self-acceleration in scalar-bimetric theories
Philippe Brax, Patrick Valageas

TL;DR
This paper explores scalar-bimetric theories where two metrics govern the universe's dynamics, leading to late-time acceleration, modified gravity effects, and the necessity of screening mechanisms to satisfy local gravity constraints.
Contribution
It introduces a class of scalar-bimetric models that achieve cosmic acceleration without a potential, analyzing their unique gravitational and cosmological features.
Findings
Late-time acceleration achieved with negligible scalar kinetic energy.
Order unity deviations in Newton's constants and fifth force effects.
Modified growth of baryonic and dark matter perturbations.
Abstract
We describe scalar-bimetric theories where the dynamics of the Universe are governed by two separate metrics, each with an Einstein-Hilbert term. In this setting, the baryonic and dark matter components of the Universe couple to metrics which are constructed as functions of these two gravitational metrics. The scalar field, contrary to dark energy models, does not have a potential whose role is to mimic a late-time cosmological constant. The late-time acceleration of the expansion of the Universe can be easily obtained at the background level in these models by appropriately choosing the coupling functions appearing in the decomposition of the vierbeins for the baryonic and dark matter metrics. We explicitly show how the concordance model can be retrieved with negligible scalar kinetic energy. This requires the scalar coupling functions to show variations of order unity during the…
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