Observational Constraints on Two-field Warm Inflation
arXiv:1905.02414 · doi:10.1103/PhysRevD.99.103529
Abstract
We study the two-field warm inflation models with a double quadratic potential and a linear temperature dependent dissipative coefficient. We derived the evolution equation of all kinds of perturbations without assuming slow-roll approximation, and obtained the curvature power spectrum at the end of inflation with a fully numerical method. Then we compute the scalar spectral index , tensor-to-scalar ratio for several representative potentials, and compare our results with observational data. At last, we use Planck data to constrain the parameters in our models. This work is a natural extension of single-field warm inflation, and the aim of this work is to present some features of multi-field warm inflation using a simple two-field model.
13 pages, 6 figures. Accepted for publication in Physical Review D
References in corpus (7)
- Warm Inflation and its Microphysical Basis
- Non-Gaussianities in two-field inflation
- Curvature and isocurvature perturbations in two-field inflation
- Power spectrum for inflation models with quantum and thermal noises
- Warm inflation dissipative effects: predictions and constraints from the Planck data
- On reaching the adiabatic limit in multi-field inflation
- Primordial non-Gaussianity in noncanonical warm inflation