English

Cosmological implications of Standard Model criticality and Higgs inflation

High Energy Physics - Phenomenology 2021-01-25 v3 Cosmology and Nongalactic Astrophysics High Energy Physics - Theory

Abstract

The observed Higgs mass indicates that the Standard Model can be valid up to near the Planck scale MPM_\text{P}. Within this framework, it is important to examine how little modification is necessary to fit the recent experimental results in particle physics and cosmology. As a minimal extension, we consider the possibility that the Higgs field plays the role of inflaton and that the dark matter is the Higgs-portal scalar field. We assume that the extended Standard Model is valid up to the string scale 1017GeV10^{17}\,\text{GeV}. (This translates to the assumption that all the non-minimal couplings are not particularly large, ξ102\xi\lesssim 10^2, as in the critical Higgs inflation, since MP/1021017GeVM_\text{P}/\sqrt{10^2}\sim 10^{17}\,\text{GeV}.) We find a correlated theoretical bound on the tensor-to-scalar ratio rr and the dark matter mass mDMm_\text{DM}. As a result, the Planck bound r<0.09r<0.09 implies that the dark-matter mass must be smaller than 1.1\,TeV, while the PandaX-II bound on the dark-matter mass mDM>0.7±0.2TeVm_\text{DM}>0.7\pm0.2\,\text{TeV} leads to r2×103r\gtrsim 2\times10^{-3}. Both are within the range of near-future detection. When we include the right-handed neutrinos of mass MR1014M_\text{R}\sim 10^{14}\,GeV, the allowed region becomes wider, but we still predict r103r\gtrsim 10^{-3} in the most of the parameter space. The most conservative bound becomes r>105r>10^{-5} if we allow three-parameter tuning of mDMm_\text{DM}, MRM_\text{R}, and the top-quark mass.

Keywords

Cite

@article{arxiv.1709.09350,
  title  = {Cosmological implications of Standard Model criticality and Higgs inflation},
  author = {Yuta Hamada and Hikaru Kawai and Yukari Nakanishi and Kin-ya Oda},
  journal= {arXiv preprint arXiv:1709.09350},
  year   = {2021}
}

Comments

Title, Abstract, and Introduction rewritten; references added; some other minor modifications; 31 pages, 12 figures; Published version in Nuclear Physics B