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arXiv · hep-ph/0411161

Higher Order Stability of a Radiatively Induced 220 GeV Higgs Mass

Abstract

The effective potential for radiatively broken electroweak symmetry in the single Higgs doublet Standard Model is explored to four sequentially subleading logarithm-summation levels (5-loops) in the dominant Higgs self-interaction couplant $λ$. We augment these results with all contributing leading logarithms in the remaining large but sub-dominant Standard Model couplants (t-quark, QCD and $SU(2)\otimes U(1)$ gauge couplants) as well as next to leading logarithm contributions from the largest of these, the t-quark and QCD couplants. Order-by-order stability is demonstrated for earlier leading logarithm predictions of an order 220 GeV Higgs boson mass in conjunction with fivefold enhancement of the value for $λ$ over that anticipated from conventional spontaneous symmetry breaking.

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BibTeXRIS

V. Elias, R. B. Mann, D. G. C. McKeon, T. G. Steele. 2005-09-07. Higher Order Stability of a Radiatively Induced 220 GeV Higgs Mass. https://doi.org/10.1103/physrevd.72.037902

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