Constraining Modified Mass-to-Horizon Cosmology Through Primordial Inflationary Observables
A. Sheykhi, G. G. Luciano, A. Benkrane
Abstract
We investigate slow-roll inflation in a modified cosmological framework inspired by a generalized mass-to-horizon relation (MHR), M=γc2 Ln/G, where n is a real parameter and γ a dimensional constant. Using Padmanabhan's emergence paradigm, we derive the modified Friedmann equations for a flat FRW universe and analyze the dynamics of a canonical scalar field (inflaton) under the slow-roll approximation. We study the resulting inflationary phenomenology for power-law and Starobinsky potentials. For power-law potentials, the MHR modification fails to reconcile these models with current CMB constraints on r and ns. In contrast, Starobinsky inflation exhibits significant sensitivity to deviations from n=1. A perturbative analysis (n=1+Δ) yields corrections to inflationary observables. We observe that the scalar power-spectrum normalization, under a fixed-Starobinsky prescription, imposes the stringent constraint 0.960 n 1.040 for N=60 efolds. This is considerably tighter than spectral-index bounds. Our results establish inflation, particularly Starobinsky-like models, as a sensitive probe of generalized horizon thermodynamics and departures from standard MHR scaling.
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