Reheating Dynamics in Inflationary Cosmology: Insights from $\alpha$-Attractor and $\alpha$-Starobinsky Models
Gabriel German

TL;DR
This paper investigates reheating dynamics in inflationary cosmology, focusing on $ ext{α}$-attractor and $ ext{α}$-Starobinsky models, providing analytical expressions for reheating temperature and analyzing their implications for cosmological observables.
Contribution
It introduces an analytical expression for the reheating temperature, making it a dynamical quantity, and demonstrates a universal scaling behavior in these inflationary models.
Findings
Reheating temperature $T_{re}$ exhibits universal scaling in both models.
Analytical expression for $T_{re}$ enhances understanding of reheating dynamics.
Constraints on inflationary models derived from observational data.
Abstract
Reheating in inflationary cosmology is essential for understanding the early universe, influencing particle production, thermalization, and the primordial power spectrum. Crucial quantities defined during the reheating epoc, such as the equation of state parameter , reheating temperature , and the number of -folds , affect inflationary observables like the scalar spectral index and the tensor-to-scalar ratio . We analyze two classes of inflationary models: generalized -attractor models and the -Starobinsky generalization. These models, motivated by supergravity and string theory, exhibit attractor behavior, ensuring strong predictions and have been studied extensively before. A salient novelty of this study, compared to previous works, is the inclusion of an analytical expression for the reheating temperature, ,…
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Taxonomy
TopicsCosmology and Gravitation Theories · Stochastic processes and financial applications · Black Holes and Theoretical Physics
