Novel CMB constraints on the $\alpha$ parameter in alpha-attractor models
Abstract
Cosmological -attractors are a compelling class of inflationary models. They lead to universal predictions for large-scale observables, broadly independent from the functional form of the inflaton potential. In this work we derive improved analytical predictions for the large-scale observables, whose dependence on the duration of reheating and the parameter is made explicit. We compare these with Planck and BICEP/Keck 2018 data in the framework of a Bayesian study, employing uniform logarithmic and linear priors for . Our improved universal predictions allow direct constraints on the duration of reheating. Furthermore, while it is well-known that CMB constraints on the tensor-to-scalar ratio can be used to place an upper bound on the parameter, we demonstrate that including the -dependence of the scalar spectral tilt yields novel constraints on . In particular, for small , the scalar spectral tilt scales with , regardless of the specific potential shape. For decreasing , this eventually puts the models in tension with CMB measurements, bounding the magnitude of from below. Therefore, in addition to the upper bound from the tensor-to-scalar ratio, we derive the first lower bound on the magnitude of for -attractor T-models, at C.L. .
Cite
@article{arxiv.2306.00918,
title = {Novel CMB constraints on the $\alpha$ parameter in alpha-attractor models},
author = {Laura Iacconi and Matteo Fasiello and Jussi Väliviita and David Wands},
journal= {arXiv preprint arXiv:2306.00918},
year = {2023}
}
Comments
version accepted for publication in JCAP