PaperPanorama

arXiv:hep-ph/0006238·v2·High Energy Physics — Phenomenology

Self-Breaking of the Standard Model Gauge Symmetry

Nima Arkani-Hamed (LBNL)🇺🇸 · Hsin-Chia Cheng (U. of Chicago)🇺🇸 · Bogdan A. Dobrescu (Fermilab)🇺🇸 · Lawrence J. Hall (LBNL)🇺🇸

PDFarXivINSPIREDOI

Abstract

If the gauge fields of the Standard Model propagate in TeV-size extra dimensions, they rapidly become strongly coupled and can form scalar bound states of quarks and leptons. If the quarks and leptons of the third generation propagate in 6 or 8 dimensions, we argue that the most tightly bound scalar is a composite of top quarks, having the quantum numbers of the Higgs doublet and a large coupling to the top quark. In the case where the gauge bosons propagate in a bulk of a certain volume, this composite Higgs doublet can successfully trigger electroweak symmetry breaking. The mass of the top quark is correctly predicted to within 20%, without the need to add a fundamental Yukawa interaction, and the Higgs boson mass is predicted to lie in the range 165 - 230 GeV. In addition to the Higgs boson, there may be a few other scalar composites sufficiently light to be observed at upcoming collider experiments.

Comments: 26 pages, 4 figures, typos corrected, references added

Citation historyopen in Citation History ↗