Aspects of Inflation and Cosmology in Non-Minimally Coupled and $R^{2}$ Palatini Gravity
Kit Lloyd-Stubbs

TL;DR
This thesis investigates inflation and cosmology in non-minimally coupled and $R^{2}$ Palatini gravity, analyzing model compatibility with observations, reheating mechanisms, baryon asymmetry generation, and the existence of inflatonic Q-balls.
Contribution
It introduces a novel inflation model in $R^{2}$ Palatini gravity, explores reheating channels, constrains baryon asymmetry, and demonstrates new inflatonic Q-balls in this framework.
Findings
The $R^{2}$ Palatini inflation model can address issues of chaotic inflation.
Reheating channels are viable within certain coupling constraints.
Existence of inflatonic Q-balls with specific properties in the model.
Abstract
This thesis presents research exploring aspects of inflation and cosmology in the context of inflation models in which an inflaton is non-minimally coupled to the Ricci scalar, or is considered in conjunction with a term quadratic in the Ricci scalar. We consider a Palatini inflation model in gravity and investigate whether this model can overcome some of the problems of the original chaotic inflation model. We investigate the compatibility of this model with the observed CMB when treated as an effective theory of inflation in quantum gravity by examining the constraints on the model parameters arising due to Planck-suppressed potential corrections and reheating. Additionally, we consider two possible reheating channels and assess their viability in relation to the constraints on the size of the coupling to the term. We present an application of the…
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Taxonomy
TopicsCosmology and Gravitation Theories · Geophysics and Gravity Measurements · Relativity and Gravitational Theory
