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Inflation: Theory and Observations

Authors :
Achúcarro, Ana
Biagetti, Matteo
Braglia, Matteo
Cabass, Giovanni
Castorina, Emanuele
Caldwell, Robert
Chen, Xingang
Coulton, William
Flauger, Raphael
Fumagalli, Jacopo
Ivanov, Mikhail M.
Lee, Hayden
Maleknejad, Azadeh
Meerburg, P. Daniel
Dizgah, Azadeh Moradinezhad
Palma, Gonzalo A.
Renaux-Petel, Sébastien
Pimentel, Guilherme L.
Wallisch, Benjamin
Wandelt, Benjamin D.
Witkowski, Lukas T.
Wu, W. L. Kimmy
Achúcarro, Ana
Biagetti, Matteo
Braglia, Matteo
Cabass, Giovanni
Castorina, Emanuele
Caldwell, Robert
Chen, Xingang
Coulton, William
Flauger, Raphael
Fumagalli, Jacopo
Ivanov, Mikhail M.
Lee, Hayden
Maleknejad, Azadeh
Meerburg, P. Daniel
Dizgah, Azadeh Moradinezhad
Palma, Gonzalo A.
Renaux-Petel, Sébastien
Pimentel, Guilherme L.
Wallisch, Benjamin
Wandelt, Benjamin D.
Witkowski, Lukas T.
Wu, W. L. Kimmy
Publication Year :
2022

Abstract

Cosmic inflation provides a window to the highest energy densities accessible in nature, far beyond those achievable in any realistic terrestrial experiment. Theoretical insights into the inflationary era and its observational probes may therefore shed unique light on the physical laws underlying our universe. This white paper describes our current theoretical understanding of the inflationary era, with a focus on the statistical properties of primordial fluctuations. In particular, we survey observational targets for three important signatures of inflation: primordial gravitational waves, primordial non-Gaussianity and primordial features. With the requisite advancements in analysis techniques, the tremendous increase in the raw sensitivities of upcoming and planned surveys will translate to leaps in our understanding of the inflationary paradigm and could open new frontiers for cosmology and particle physics. The combination of future theoretical and observational developments therefore offer the potential for a dramatic discovery about the nature of cosmic acceleration in the very early universe and physics on the smallest scales.<br />Comment: Contribution to Snowmass 2021; 99 pages, 7 figures, 362 endorsers

Details

Database :
OAIster
Publication Type :
Electronic Resource
Accession number :
edsoai.on1312097024
Document Type :
Electronic Resource