Theoretical and Observational Constraints on Brane Inflation and Study of Scalar Perturbations through the Effective Field Theory Formalism
Spyros Sypsas

TL;DR
This thesis explores observational signatures of cosmic superstrings in D-brane inflation models and analyzes scalar perturbations using the Effective Field Theory formalism, linking heavy fields to inflationary observables.
Contribution
It provides new constraints on cosmic superstring properties in D-brane inflation and develops an EFT framework to incorporate heavy scalar effects on inflationary perturbations.
Findings
Cosmic superstrings in D3/D7 models are local axionic types.
Heavy scalar fields induce dispersive effects in inflaton perturbations.
EFT operators connect UV physics scales with inflationary correlators.
Abstract
In this thesis, consisting of two main parts, we study observational signatures of cosmic (super)strings in the context of D-brane inflation and properties of scalar perturbations on generic homogeneous inflating backgrounds. In the first part we study the production, nature and decay processes of cosmic superstrings in two widely used effective models of D-brane inflation, namely the and models. Specifically, we show that the strings produced in are of local axionic type and we place constraints on the tension while arguing that the supersymmetry breaking mechanism of the model needs to be altered according to supergravity constraints on constant Fayet-Iliopoulos terms. Moreover, we study radiative processes of cosmic superstrings on warped backgrounds. We argue that placing the string formation in a natural context such as inflation,…
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Taxonomy
TopicsCosmology and Gravitation Theories · Solar and Space Plasma Dynamics · Black Holes and Theoretical Physics
