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Constraints on the scalar-field potential in warm inflation

Published 29 Sep 2022 in gr-qc and astro-ph.CO | (2209.14908v2)

Abstract: We quantify the degree of fine tuning required to achieve an observationally viable period of inflation in the strongly dissipative regime of warm inflation. The ``fine-tuning'' parameter λ\lambda is taken to be the ratio of the change in the height of the potential ΔV\Delta V to the change in the scalar field (Δϕ)<sup>4(\Delta \phi)<sup>{4}, i.e. the width of the potential, and therefore measures the requisite degree of flatness in the potential. The best motivated warm inflationary scenarios involve a dissipation rate of the kind ΓT<sup>c\Gamma\propto T<sup>c with c0c\geq 0, and for all such cases, the bounds on λ\lambda are tighter than those for standard cold inflation by at least 3 orders of magnitude. In other words, these models require an even flatter potential than standard inflation. On the other hand for the case of warm inflation with $c&lt; 0$, we find that in a strongly dissipative regime the bound on λ\lambda can significantly weaken with respect to cold inflation. Thus, if a warm inflation model can be constructed in a strongly dissipative, negatively temperature-dependent regime, it accommodates steeper potentials otherwise ruled out in standard inflation.

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