The two-field regime of natural inflation
arXiv:1510.08775 · doi:10.1088/1475-7516/2015/12/044
Abstract
The simplest two-field completion of natural inflation has a regime in which both fields are active and in which its predictions are within the Planck 1- confidence contour. We show this for the original model of natural inflation, in which inflation is achieved through the explicit breaking of a U(1) symmetry. We consider the case in which the mass coming from explicit breaking of this symmetry is comparable to that from spontaneous breaking, which we show is consistent with a hierarchy between the corresponding energy scales. While both masses are comparable when the observable modes left the horizon, the mass hierarchy is restored in the last e-foldings of inflation, rendering the predictions consistent with the isocurvature bounds. For completeness, we also study the predictions for the case in which there is a large hierarchy of masses and an initial period of inflation driven by the (heavy) radial field.
18 pages, 9 figures
References in corpus (19)
- A Natural Framework for Chaotic Inflation
- Fitting the Gamma-Ray Spectrum from Dark Matter with DMFIT: GLAST and the Galactic Center Region
- Challenges for Large-Field Inflation and Moduli Stabilization
- Multi-Natural Inflation in Supergravity
- Two-Field Analysis of No-Scale Supergravity Inflation
- Trajectories with suppressed tensor-to-scalar ratio in Aligned Natural Inflation
- Non-Gaussianities in Multifield Inflation: Superhorizon Evolution, Adiabaticity, and the Fate of fnl
- Inflating with Large Effective Fields
- On reaching the adiabatic limit in multi-field inflation
- Saving Natural Inflation
- Simple realization of inflaton potential on a Riemann surface
- On the viability of m**2 phi**2 and natural inflation
- Notes on natural inflation
- Multifield Dynamics in Higgs-otic Inflation
- Monodromy Inflation in SUSY QCD
- Natural Inflation and Low Energy Supersymmetry
- Natural Braneworld Inflation in Light of Recent Results from Planck and BICEP2
- A Minimal Sub-Planckian Axion Inflation Model with Large Tensor-to-Scalar Ratio
- Spinodal Instabilities and Super-Planckian Excursions in Natural Inflation