Constraining $\beta$-Exponential Inflation with the latest ACT observations
Abstract
Recent observations from the Atacama Cosmology Telescope (ACT), especially when combined with DESI baryon acoustic oscillation data, indicate a scalar spectral index higher than the value reported by \textit{Planck} 2018, placing tension on universal inflationary attractor models. Motivated by this discrepancy, we investigate the inflationary predictions of the -exponential potential, considering both minimally and non-minimally coupled realizations. This potential generalizes standard exponential inflation and naturally arises in braneworld scenarios. We derive analytical expressions for the slow-roll parameters and inflationary observables using a perturbative expansion in the non-minimal coupling , and validate these results through numerical calculations. In the minimally coupled case, the model predicts and for and moderate values of \beta, remaining compatible with ACT+DESI constraints at the 1\sigma level while yielding a spectral tilt larger than the universal attractor prediction. Introducing a small non-minimal coupling significantly improves agreement with observations by suppressing the tensor-to-scalar ratio while preserving the enhanced scalar tilt. For , and , the non-minimally coupled model yields and , comfortably consistent with ACT, DESI, and BICEP/Keck bounds. Our results show that the -exponential potential, especially when implemented with a non-minimal coupling, exhibits good agreement with the latest CMB observations. Our inflationary predictions of the non-minimal model of and confirming the leading-order contributions in are sufficient to capture the essential features of both and in observationally relevant regimes.
Keywords
Cite
@article{arxiv.2602.17380,
title = {Constraining $\beta$-Exponential Inflation with the latest ACT observations},
author = {Jureeporn Yuennan and Farruh Atamurotov and Salvatore Capozziello and Phongpichit Channuie},
journal= {arXiv preprint arXiv:2602.17380},
year = {2026}
}
Comments
V1: many pages, many figures, abstract shortened, version accepted for publication in EPJC