English

Scale Invariant Extension of the Standard Model: A Nightmare Scenario in Cosmology

High Energy Physics - Phenomenology 2024-05-20 v2

Abstract

Inflationary observables of a classically scale invariant model, in which the origin of the Planck mass and the electroweak scale including the right-handed neutrino mass is chiral symmetry breaking in a QCD-like hidden sector, are studied. Despite a three-field inflation the initial-value-dependence is strongly suppressed thanks to a river-valley like potential. The model predicts the tensor-to-scalar ratio rr of cosmological perturbations smaller than that of the R2R^2 inflation, i.e., 0.0044\gsimr\gsim0.0017 0.0044 \gsim r \gsim 0.0017 for e-foldings between 5050 and 6060: The model will be consistent even with a null detection at LiteBird/CMB-S4. We find that the non-Gaussianity parameter fNLf_{NL} is O(102)O(10^{-2}), the same size as that of single-field inflation. The dark matter particles are the lightest Nambu-Goldstone bosons associated with chiral symmetry breaking, which are decay products of one of the inflatons and are heavier than 10910^9 GeV with a strongly suppressed coupling with the standard model, implying that the dark matter will be unobservable in direct as well as indirect measurements.

Keywords

Cite

@article{arxiv.2401.12442,
  title  = {Scale Invariant Extension of the Standard Model: A Nightmare Scenario in Cosmology},
  author = {Mayumi Aoki and Jisuke Kubo and Jinbo Yang},
  journal= {arXiv preprint arXiv:2401.12442},
  year   = {2024}
}

Comments

32 pages, 18 figures, published version