Measuring the Inflaton Coupling in the CMB
arXiv:1903.09599 · doi:10.1088/1475-7516/2022/09/069
Abstract
We study the perspectives to extract information about the microphysical parameters that governed the reheating process after cosmic inflation from CMB data. We identify conditions under which the inflaton coupling to other fields can be constrained for a given model of inflation without having to specify the details of the particle physics theory within which this model is realised. This is possible when the effective potential during reheating is approximately parabolic, and when the coupling constants are smaller than an upper bound that is determined by the ratios between the inflaton mass and the Planck mass or the scale of inflation. We consider scalar, Yukawa, and axion-like interactions and estimate that these conditions can be fulfilled if the inflaton coupling is comparable to the electron Yukawa coupling or smaller, and if the inflaton mass is larger than GeV. Constraining the order of magnitude of the coupling constant requires measuring the scalar-to-tensor ratio at the level of , which is possible with future CMB observatories. Such a measurement would provide an important clue to understand how a given model of inflation may be embedded into a more fundamental theory of nature.
20 pages plus appendices; matches the version published in JCAP
References in corpus (51)
- The Standard Model Higgs boson as the inflaton
- BICEP / Keck XIII: Improved Constraints on Primordial Gravitational Waves using Planck, WMAP, and BICEP/Keck Observations through the 2018 Observing Season
- Nonperturbative Dynamics Of Reheating After Inflation: A Review
- Warm Inflation and its Microphysical Basis
- Towards a precision calculation of in the Standard Model II: Neutrino decoupling in the presence of flavour oscillations and finite-temperature QED
- Neutrino decoupling including flavour oscillations and primordial nucleosynthesis
- A precision calculation of relic neutrino decoupling
- Feebly-Interacting Particles:FIPs 2020 Workshop Report
- Reheating constraints to inflationary models
- How accurately can 21 cm tomography constrain cosmology?
- CMB-S4: Forecasting Constraints on Primordial Gravitational Waves
- The First Three Seconds: a Review of Possible Expansion Histories of the Early Universe
- Reheating predictions in single field inflation
- Precision Early Universe Thermodynamics made simple: and Neutrino Decoupling in the Standard Model and beyond
- New physics from the polarised light of the cosmic microwave background
- Inflation and the Scale Dependent Spectral Index: Prospects and Strategies
- Violent Preheating in Inflation with Nonminimal Coupling
- Interacting neutrinos in cosmology: exact description and constraints
- Dynamics of oscillating scalar field in thermal environment
- Gravitational wave background from Standard Model physics: Complete leading order
- Perturbation, Non-Gaussianity and Reheating in a GB--Attractor Model
- Inflation meets neutrinos
- Updated design of the CMB polarization experiment satellite LiteBIRD
- CMB constraints on the inflaton couplings and reheating temperature in -attractor inflation
- Dissipative Effects on Reheating after Inflation
- BICEP/Keck Constraints on Attractor Models of Inflation and Reheating
- Moduli decay in the hot early Universe
- Curing inflationary degeneracies using reheating predictions and relic gravitational waves
- Energy distribution and equation of state of the early Universe: matching the end of inflation and the onset of radiation domination
- ALP inflation and Big Bang on Earth
- Dynamical evolution of axion condensates under stimulated decays into photons
- Massive neutrino self-interactions and inflation
- Increasing Temperature toward the Completion of Reheating
- Natural Inflation After Planck 2018
- Revealing the Cosmic History with Gravitational Waves
- Minimal warm inflation with complete medium response
- Constraining the general reheating phase in the -attractor inflationary cosmology
- Shortcomings of New Parametrizations of Inflation
- On finite density effects on cosmic reheating and moduli decay and implications for Dark Matter production
- Reheating predictions in Gravity Theories with Derivative Coupling
- Constraints on Kähler moduli inflation from reheating
- Oscillating scalar dissipating in a medium
- Minimal plateau inflationary cosmologies and constraints from reheating
- The Secret Higgstory of the Highest Temperature during Reheating
- Quantum corrections to inflation: the importance of RG-running and choosing the optimal RG-scale
- Dark matter production and reheating via direct inflaton couplings: collective effects
- Opening the reheating box in multifield inflation
- Scalar field damping at high temperatures
- General Markovian Equation for Scalar Fields in a Slowly Evolving Background
- The Thermal Feedback Effects on the Temperature Evolution during Reheating
- Absence of violation in the strong interactions
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- WIMPs, FIMPs, and Inflaton phenomenology via reheating, CMB and
- Gravitational Wave from Graviton Bremsstrahlung during Reheating
- Energy Density, Temperature and Entropy Dynamics in Perturbative Reheating
- Connecting Cosmic Inflation to Particle Physics with LiteBIRD, CMB-S4, EUCLID and SKA
- General Markovian Equation for Scalar Fields in a Slowly Evolving Background
- The Thermal Feedback Effects on the Temperature Evolution during Reheating