Improved Predictions on Higgs-Starobinsky Inflation and Reheating with ACT DR6 and Primordial Gravitational Waves
arXiv:2505.04615 · doi:10.1016/j.physletb.2025.139852
Abstract
We investigate the implications of recent CMB observations for Higgs-Starobinsky inflationary models and their associated reheating dynamics, utilizing data from ACT DR6, Planck 2018, BICEP/Keck 2018, and DESI, collectively referred to as P-ACT-LB-BK18. In addition to direct CMB constraints, we incorporate indirect bounds arising from the potential overproduction of primordial gravitational waves (PGWs), particularly through limits on the effective number of relativistic species, , during Big Bang Nucleosynthesis (BBN). These constraints become especially relevant in scenarios featuring a stiff post-inflationary equation of state . Our analysis shows that, when both P-ACT-LB-BK18 data and bounds are considered, the viable number of inflationary e-folds is restricted to the range (-) at the confidence level (C.L.). Correspondingly, the reheating temperature is constrained to lie between the BBN energy scale and GeV, with the post-inflationary equation-of-state parameter satisfying . However, no parameter space remains viable at the C.L. once constraints from PGWs are included, rendering the Higgs-Starobinsky model highly restricted.
Accepted for publication in PLB, 7 pages, 2 figures, 2 tables
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