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arXiv · 1404.6704

Reheating constraints to inflationary models

Abstract

Evidence from the BICEP2 experiment for a significant gravitational-wave background has focussed attention on inflaton potentials $V(ϕ) \propto ϕ^α$ with $α=2$ ("chaotic" or "$m^2ϕ^2$" inflation) or with smaller values of $α$, as may arise in axion-monodromy models. Here we show that reheating considerations may provide additional constraints to these models. The reheating phase preceding the radiation era is modeled by an effective equation-of-state parameter $w_{\rm re}$. The canonical reheating scenario is then described by $w_{\rm re}=0$. The simplest $α=2$ models are consistent with $w_{\rm re} = 0$ for values of $n_s$ well within the current $1σ$ range. Models with $α=1$ or $α=2/3$ require a more exotic reheating phase, with $-1/3 1/3$, unless $n_s$ is close to the lower limit of the $2σ$ range. For $m^2ϕ^2$ inflation and canonical reheating as a benchmark, we derive a relation $\log_{10}\left(T_{\rm re}/10^6\,{\rm GeV} \right) \simeq 2000\,(n_s-0.96)$ between the reheat temperature $T_{\rm re}$ and the scalar spectral index $n_s$. Thus, if $n_s$ is close to its central value, then $T_{\rm re}\lesssim 10^6$~GeV, just above the electroweak scale. If the reheat temperature is higher, as many theorists may prefer, then the scalar spectral index should be closer to $n_s\simeq0.965$ (at the pivot scale $k=0.05\,{\rm Mpc}^{-1}$), near the upper limit of the $1σ$ error range. Improved precision in the measurement of $n_s$ should allow $m^2ϕ^2$, axion-monodromy, and $ϕ^4$ models to be distinguished, even without precise measurement of $r$, and to test the $m^2ϕ^2$ expectation of $n_s\simeq0.965$.

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BibTeXRIS

Liang Dai, Marc Kamionkowski, Junpu Wang. 2014-07-13. Reheating constraints to inflationary models. https://doi.org/10.1103/physrevlett.113.041302

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