CMB constraints on monodromy inflation at strong coupling
arXiv:2205.14952 · doi:10.1088/1475-7516/2022/09/080
Abstract
We carry out a thorough numerical examination of field theory monodromy inflation at strong coupling. We perform an MCMC analysis using a Gaussian likelihood, fitting multiparameter models using CMB constraints on the spectral index and the tensor to scalar ratio. We show that models with uniquely positive Wilson coefficients are ruled out. If there are coefficients that can take on both signs, there can be a cancellation of terms that flattens the potentials and allows one to satisfy current data, and forecasts with strong constraints on the tensor to scalar ratio. Models of field theory monodromy are naturally enhanced to include a mechanism for canceling off radiative corrections to vacuum energy, via vacuum energy sequestering (VES). Although they include a much larger parameter space, we find that a similar numerical examination yields no significant change in the Bayesian evidence for VES enhanced models, with naturalness considerations making them more attractive from a theoretical perspective.
23 pages, 8 figures
References in corpus (10)
- dynesty: A Dynamic Nested Sampling Package for Estimating Bayesian Posteriors and Evidences
- Monodromy in the CMB: Gravity Waves and String Inflation
- A Natural Framework for Chaotic Inflation
- An Ignoble Approach to Large Field Inflation
- Where in the String Landscape is Quintessence
- Vacuum Energy Sequestering: The Framework and Its Cosmological Consequences
- 'The End'
- An Etude on Global Vacuum Energy Sequester
- Cosmological consequences of Omnia Sequestra
- Quantum corrections to vacuum energy sequestering (with monodromy)