Nonminimal infrared gravitational reheating in light of ACT observation
Ayan Chakraborty, Debaprasad Maity, Rajesh Mondal

TL;DR
This paper explores a nonminimal infrared gravitational reheating mechanism influenced by ACT observations, analyzing both perturbative and non-perturbative effects, and constrains inflationary models with potential detectable gravitational wave signals.
Contribution
It introduces a novel infrared reheating scenario involving non-minimal coupling, analyzes its viability with recent observational constraints, and predicts detectable gravitational wave signals.
Findings
Successful reheating requires equation of state w > 0.6
Coupling strength must be between 2.11 and 2.95 for certain models
Predicted gravitational waves could be detected by future observatories
Abstract
Inflation is known to produce large infrared scalar fluctuations. Further, if a scalar field is non-minimally coupled with gravity through , those infrared modes experience \textit{tachyonic instability} during and after inflation. Those large non-perturbative infrared modes can collectively produce hot Big Bang universe upon their horizon entry during the post-inflationary period. We indeed find that for reheating equation of state (EoS), , and coupling strength, , large infrared fluctuations lead to successful reheating. We further analyze perturbative reheating by solving the standard Boltzmann equation in both Jordan and Einstein frames, and compare the results with the non-perturbative ones. Finally, embedding this infrared reheating scenario into the well-known attractor inflationary model, we examine possible constraints on…
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Taxonomy
TopicsAdaptive optics and wavefront sensing · Space Satellite Systems and Control
