Bifurcated symmetry breaking in scalar-tensor gravity
M. Yoshimura

TL;DR
This paper introduces a multi-scalar tensor gravity model that unifies dark energy, dark matter, and inflation, with unique symmetry breaking mechanisms and testable fifth-force interactions.
Contribution
It proposes a novel framework combining scalar-tensor gravity with symmetry breaking to explain dark energy, dark matter, and inflation simultaneously.
Findings
Dark energy density of order (a few meV)^4
Dark matter particle mass approximately 1 meV
Potential fifth-force interactions with a range of about 10^{-2} cm
Abstract
We present models that simultaneously predict presence of dark energy and cold dark matter along with slow-roll inflation. The dark energy density is found to be of order , and the mass of dark matter constituent is meV. These numbers are given in terms of the present value of Hubble constant and the Plank energy : they are for the energy density and for the dark matter constituent mass. The basic framework is a multi-scalar tensor gravity with non-trivial conformal coupling to the Ricci scalar curvature in the lagrangian density. The key for a right amount of dark energy is to incorporate in a novel way the spatially homogeneous kinetic contribution of Nambu-Goldstone modes in a spontaneously broken multi-scalar field sector. Proposed theories are made consistent with general…
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Taxonomy
TopicsCosmology and Gravitation Theories · Dark Matter and Cosmic Phenomena · Particle physics theoretical and experimental studies
