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arXiv · 2505.01517

ACT DR6 Insights on the Inflationary Attractor models and Reheating

Abstract

We investigate the observational constraints on $α$-attractor inflationary models and their post-inflationary reheating dynamics in light of the latest CMB data from ACT DR6 combined with Planck18, BICEP/$Keck$ 2018, and DESI (P-ACT-LB-BK18). Focusing on both E- and T-type attractor potentials, we analyze how inflationary observables, namely the scalar spectral index $n_s$ and the tensor-to-scalar ratio $r$, are indirectly influenced by reheating parameters such as the reheating temperature $T_{\text{RH}}$, the inflaton EoS $w_ϕ$, and consequently the inflaton's couplings to SM particles. We incorporate constraints from PGW overproduction via $ΔN_{\rm eff}$ bounds. Additionally, we include theoretical constraints from CW one-loop radiative corrections, as well as inflaton self-resonance, a non-perturbative effect that can occur even in the absence of inflaton-SM interactions and imposes a strong lower limit, particularly significant for $1/3\lesssim w_ϕ\lesssim 0.7$. Our analysis shows that E-models allow a broad range of reheating scenarios, including matter-like reheating ($w_ϕ=0$), whereas the T-model yields more restrictive results and remains viable only for $w_ϕ>1/2$ for all three non-gravitational interaction channels, $ϕ\to\bar{f}f$, $ϕ\to bb$, and $ϕϕ\to bb$ are considered. For stiffer EoS, an intermediate coupling window survives, bounded from above by CW corrections or $2σ$ observational limits, and from below by the combined PGW and self-resonance constraints. We derive updated bounds on inflaton couplings for both decay and scattering channels and identify parameter regions consistent with successful perturbative reheating. These results establish a robust connection between inflationary dynamics, reheating physics, and particle interactions, and provide concrete targets for upcoming precision CMB observations.

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BibTeXRIS

Md Riajul Haque, Sourav Pal, Debarun Paul. 2026-07-08. ACT DR6 Insights on the Inflationary Attractor models and Reheating. https://doi.org/10.1103/1kj4-s4ts

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