The Extended Bess Model: Bounds from Precision Electroweak Measurements
Abstract
We present an effective Lagrangian parameterization describing scalar, vector, and axial-vector bound states, originating from a strong breaking of the electroweak symmetry, based on the global symmetry . In this approach vector and axial-vector bound states are gauge bosons associated to a hidden symmetry. After the gauging of the electroweak symmetry, the corrections to the self-energies of the standard model gauge bosons are calculated and bounds on the parameter space of the model arising from precision measurements are studied. The self-energy corrections arise from spin 1 mixings, pseudogoldstones loops, pseudogoldstone-spin 1 loops, and tadpole terms. The one-loop terms tend to decrease both isospin conserving and isospin violating corrections. Careful calculation for standard QCD-scaled technicolor shows that strictly this model (which has however serious theoretical difficulties on his own) is still marginally allowed at present experimental precision.
Cite
@article{arxiv.hep-ph/9209290,
title = {The Extended Bess Model: Bounds from Precision Electroweak Measurements},
author = {R. Casalbuoni and A. Deandrea and S. De Curtis and N. Di Bartolomeo and D. Dominici and F. Feruglio and R. Gatto},
journal= {arXiv preprint arXiv:hep-ph/9209290},
year = {2015}
}
Comments
LaTeX (style article), 28 pages, 7 figures, UGVA-DPT 1992/07-778, v2 only updates the original broken TeX file