| Literature DB >> 31997830 |
Xavier Calmet1,2, Iberê Kuntz1, Ian G Moss3.
Abstract
In the absence of new physics around 10 10 GeV, the electroweak vacuum is at best metastable. This represents a major challenge for high scale inflationary models as, during the early rapid expansion of the universe, it seems difficult to understand how the Higgs vacuum would not decay to the true lower vacuum of the theory with catastrophic consequences if inflation took place at a scale above 10 10 GeV. In this paper we show that the non-minimal coupling of the Higgs boson to curvature could solve this problem by generating a direct coupling of the Higgs boson to the inflationary potential thereby stabilizing the electroweak vacuum. For specific values of the Higgs field initial condition and of its non-minimal coupling, inflation can drive the Higgs field to the electroweak vacuum quickly during inflation.Entities:
Keywords: Electroweak vacuum stability; Higgs; Inflation
Year: 2017 PMID: 31997830 PMCID: PMC6956876 DOI: 10.1007/s10701-017-0131-2
Source DB: PubMed Journal: Found Phys ISSN: 0015-9018 Impact factor: 1.390
Fig. 1The Einstein frame Higgs potential for different values of the false-vacuum inflation rate for . The potential vanishes at , and there is an asymptote at . Consistency of the model (no ghosts) requires . An initial condition can be achieved with the initial close to
Fig. 2The lower bound on , where is the curvature coupling, for consistent chaotic initial conditions on the Higgs field which will lead the Higgs into the false vacuum. The horizontal axis is the Higgs stability scale. The different curves from bottom to top are for the false vacuum Hubble parameter 0.1 to . The dashed lines show the lower bound for quantum stability of the false vacuum