Clarifying Inflation Models: Slow-roll as an expansion in 1/N_{efolds}
D. Boyanovsky, H. J. de Vega, N. G. Sanchez

TL;DR
This paper presents a new effective field theory approach to slow-roll inflation, expressing the inflaton potential as an expansion in 1/N, and relates inflation parameters to GUT and supersymmetry scales, revealing natural small couplings.
Contribution
It introduces a form of the inflaton potential as an expansion in 1/N, clarifies the role of slow-roll parameters, and connects inflation scales with GUT and supersymmetry breaking scales.
Findings
Inflation scale M is approximately 0.77 x 10^16 GeV.
The inflaton potential can be expressed as V(phi)=N M^4 w(phi/√N M_P).
Small non-linear couplings arise naturally without fine tuning.
Abstract
Slow-roll inflation is studied as an effective field theory.We find as consistent form of the inflaton potential V(phi)=N M^4 w(phi/[sqrt{N}M_P]) where phi is the inflaton field, M the inflation energy scale, M_P the Planck mass, and N~50 the number of efolds since the relevant modes exited the horizon till the end of inflation. The dimensionless function w(chi) and field chi are O(1). The WMAP value for the amplitude of scalar adiabatic fluctuations |\Delta_{k ad}^(S)| fixes the inflation scale M ~ 0.77 10^16 GeV precisely at the GUT scale. This general form of the potential makes manifest that the slow roll expansion is an expansion in 1/N. Powers of 1/N count the orders in the slow roll expansion.This form of the inflaton potential suggests that the super symmetry breaking scale is at the inflation and GUT scales.A Ginzburg-Landau realization of this inflaton potential reveals that…
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Taxonomy
TopicsCosmology and Gravitation Theories · Black Holes and Theoretical Physics · Dark Matter and Cosmic Phenomena
