English

Softly Fine-Tuned Standard Model and the Scale of Inflation

High Energy Physics - Phenomenology 2015-11-04 v1 General Relativity and Quantum Cosmology High Energy Physics - Theory

Abstract

The direct coupling between the Higgs field and the spacetime curvature, if finely tuned, is known to stabilize the Higgs boson mass. The fine-tuning is soft because the Standard Model (SM) parameters are subject to no fine-tuning thanks to their independence from the Higgs-curvature coupling. This soft fine-tuning leaves behind a large vacuum energy ΛUV4\propto \Lambda_{\rm UV}^4 which inflates the Universe with a Hubble rate ΛUV\propto \Lambda_{\rm UV}, ΛUV\Lambda_{\rm UV} being the SM ultraviolet boundary. This means that the tensor-to-scalar ratio inferred from cosmic microwave background polarization measurements by BICEP2, Planck and others lead to the determination of ΛUV\Lambda_{\rm UV}. The exit from the inflationary phase, as usual, is accomplished via decays of the vacuum energy. Here we show that, identification of ΛUV\Lambda_{\rm UV} with the inflaton, as a sliding UV scale upon the SM, respects the soft fine-tuning constraint and does not disrupt the stability of the SM Higgs boson.

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Cite

@article{arxiv.1510.08606,
  title  = {Softly Fine-Tuned Standard Model and the Scale of Inflation},
  author = {Beste Korutlu},
  journal= {arXiv preprint arXiv:1510.08606},
  year   = {2015}
}

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5 pages