English

Gravitational Imprints from Heavy Kaluza-Klein Resonances

High Energy Physics - Phenomenology 2020-09-16 v3 General Relativity and Quantum Cosmology High Energy Physics - Theory

Abstract

We systematically study the holographic phase transition of the radion field in a five-dimensional warped model which includes a scalar potential with a power-like behavior. We consider Kaluza-Klein (KK) resonances with masses mKKm_{\rm KK} at the TeV scale or beyond. The backreaction of the radion field on the gravitational metric is taken into account by using the superpotential formalism. The confinement/deconfinement first order phase transition leads to a gravitational wave stochastic background which mainly depends on the scale mKKm_{\rm KK} and the number of colors, NN, in the dual theory. Its power spectrum peaks at a frequency that depends on the amount of tuning required in the electroweak sector. It turns out that the present and forthcoming gravitational wave observatories can probe scenarios where the KK resonances are very heavy. Current aLIGO data already rule out vector boson KK resonances with masses in the interval mKK(110)×105m_{\rm KK}\sim(1 - 10) \times 10^5 TeV. Future gravitational experiments will be sensitive to resonances with masses mKK105m_{\rm KK}\lesssim 10^5 TeV (LISA), 10810^8 TeV (aLIGO Design) and 10910^9 TeV (ET). Finally, we also find that the Big Bang Nucleosynthesis bound in the frequency spectrum turns into a lower bound for the nucleation temperature as Tn104NmKKT_n \gtrsim 10^{-4}\sqrt{N} \,m_{\rm KK}.

Keywords

Cite

@article{arxiv.2005.04127,
  title  = {Gravitational Imprints from Heavy Kaluza-Klein Resonances},
  author = {Eugenio Megias and Germano Nardini and Mariano Quiros},
  journal= {arXiv preprint arXiv:2005.04127},
  year   = {2020}
}

Comments

11 pages, 6 figures; v2 extended version: added references and Figs. 1 (right), 2, 3, 4 (lower panels) and 5, Sec. IV, and extended discussion in Secs. V, VI and VII; v3 added references, extended discussion in Sec. VI. It matches the version published in Physical Review D