A minimal self tuning model to solve the cosmological constant problem
Arnaz Khan, Andy Taylor

TL;DR
This paper introduces a minimal self-tuning scalar field model within Horndeski theory that dynamically cancels large quantum vacuum energy, enabling a stable, accelerated universe without fine tuning.
Contribution
It presents a novel, minimal self-tuning scalar field model outside known classes, capable of canceling vacuum energy and producing accelerated expansion.
Findings
Model cancels large quantum vacuum energy dynamically.
Allows for a matter-dominated era and stable attractor solutions.
Analytic and numerical solutions demonstrate viability.
Abstract
The expansion of the Universe is observed to be accelerating, with the simplest solution being a classical cosmological constant. However, this receives contributions from the quantum vacuum, which are predicted to be many orders of magnitude larger than observations, and suffers from radiative instabilities requiring repeated fine tuning. In this paper we present a minimal, self tuning scalar field model that can dynamically cancel a large quantum vacuum energy, avoiding Weinberg's No Go Theorem, and produce accelerated de Sitter expansion at a lower energy scale as a solution to the problem. Our minimal model, which contains a non canonical kinetic energy and a linear potential, belongs to the Kinetic Gravity Braiding subclass of Horndeski theory which is not observationally excluded, and lies outside of the known Fab Four or Well Tempered models. We find analytic solutions in the…
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Taxonomy
TopicsCosmology and Gravitation Theories · Galaxies: Formation, Evolution, Phenomena · Black Holes and Theoretical Physics
