4.6 Article

Non-Gaussian signatures of a thermal Big Bang

出版社

IOP Publishing Ltd
DOI: 10.1088/1475-7516/2022/07/005

关键词

alternatives to inflation; non-gaussianity

资金

  1. STFC [ST/L00044X/1]
  2. National Research Foundation of Korea [2019R1A2C2085023]
  3. University of Waterloo
  4. Natural Sciences and Engineering Research Council of Canada (NSERC)
  5. Perimeter Institute for Theoretical Physics (NA)
  6. Government of Canada through Department of Innovation, Science and Economic Development Canada
  7. Province of Ontario through Ministry of Colleges and Universities
  8. National Research Foundation of Korea [2019R1A2C2085023] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

This paper introduces a thermal bimetric model and explores its non-Gaussian features, providing precise predictions based on the characteristics of the model. These results are of great significance for future cosmological surveys.
What if Big Bang was hot from its very inception? This is possible in a bimetric theory where the source of fluctuations is thermal, requiring the model to live on a critical boundary in the space of parameters and can be realized when an anti-DBI brane moves within an EAdS(2) X E-3 geometry. This setup renders the model unique, with sharp predictions for the scalar spectral index and its running. We investigate the non-Gaussian signatures of this thermal bimetric model, or bi-thermal for short. We adapt the standard calculation of non-Gaussianities for P(X, phi) models to the thermal nature of the model, emphasising how the bi-thermal peculiarities affect the calculation and alter results. This leads to precise predictions for the shape and amplitude of the three-point function of the bi-thermal model (at tree-level): f(NL)(local) = -3/2 and f(NL)(equil) = -2 + 4 root 3 pi/9(sic)0.4. We also discover a new shape of flattened non-gaussianity (sic)(k(1) + k(2) - k(3))(-3/2)+ permutations, which is expected due to the excited thermal initial conditions. These results, along with our earlier predictions for the scalar power spectrum, provide sharp targets for the future generation of cosmological surveys.

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