Rescaled Einstein-Hilbert Gravity from $f(R)$ Gravity: Inflation, Dark Energy and the Swampland Criteria
V.K. Oikonomou

TL;DR
This paper explores exponential $f(R)$ gravity models with a scalar field, demonstrating their viability for inflation and dark energy, while satisfying Swampland criteria through a rescaled Einstein-Hilbert framework.
Contribution
It introduces a class of exponential $f(R)$ models with a rescaled Einstein-Hilbert term, showing their compatibility with inflation, dark energy, and Swampland criteria, which is a novel approach.
Findings
Inflationary models are viable and satisfy Swampland criteria.
Late-time dark energy behavior resembles $\Lambda$CDM.
Rescaled Einstein-Hilbert gravity simplifies early universe phenomenology.
Abstract
We consider a class of exponential models of gravity, in the presence of a canonical scalar field, for which at early times the effective Lagrangian of the theory becomes that of a rescaled canonical scalar field with the Einstein-Hilbert term becoming , with a dimensionless constant. This rescaled Einstein-Hilbert scalar field theory at early times alters the inflationary phenomenology of well-known scalar field models of inflation, but more importantly, in the context of this rescaled theory, the Swampland criteria are easily satisfied, assuming that the scalar field is slowly rolling. We consider two models of inflation to exemplify our study, a fibre inflation model and a model that belongs to the general class of supergravity -attractor models. The inflationary phenomenology of the models is demonstrated to be viable, and for the same set of…
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