Chaotic Inflation and Reheating in Generalized Scalar-Tensor Gravity
Mat\'ias L\'opez, Giovanni Otalora, Nelson Videla

TL;DR
This paper explores slow-roll inflation in generalized scalar-tensor gravity with non-minimal coupling and Galileon interactions, predicting reheating parameters and comparing model predictions with Planck observational constraints.
Contribution
It introduces a combined effect of non-minimal coupling and Galileon self-interaction in inflation models, improving agreement with observational data.
Findings
Model predictions align with Planck constraints within 95% confidence level.
Combined effects yield better tensor-to-scalar ratio results than individual effects.
Derived relations between reheating parameters and inflationary observables.
Abstract
In the present work, we study slow-roll inflation in scalar-tensor gravity theories in the presence of both the non-minimal coupling between the scalar field and curvature, and the Galileon self-interaction of the scalar field. Furthermore, we give predictions for the duration of reheating as well as for the reheating temperature after inflation. After working out the expressions for the power spectra of scalar and tensor perturbations in the case of a general non-minimal coupling function that depends solely on the scalar field and a general scalar potential, we focus on the special cases of the power-law coupling function and chaotic quadratic inflation. Thus, under the slow-roll approximation we confront the predictions of the model with the current PLANCK constraints on the spectral index and the tensor-to-scalar ratio using the plane. We found that the…
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