English

$\mu$-$e$ conversion in nuclei and Z$^\prime$ physics

High Energy Physics - Phenomenology 2008-11-26 v1

Abstract

Together with the existence of new neutral gauge bosons, models based on extended gauge groups (rank >4> 4) often predict also new charged fermions. A mixing of the known fermions with new states with {\it exotic} weak-isospin assignments (left-handed singlets and right-handed doublets) will induce tree level flavour changing neutral interactions mediated by ZZ exchange, while if the mixing is only with new states with {\it ordinary} weak-isospin assignments, the flavour changing neutral currents are mainly due to the exchange of the lightest new neutral gauge boson ZZ^\prime. We show that the present experimental limits on μe\mu-e conversion in nuclei give a nuclear-model-independent bound on the ZZ-ee-μ\mu vertex which is twice as strong as that obtained from μeee\mu\to e e e. In the case of E6_6 models these limits provide quite stringent constraints on the ZZ^\prime mass and on the ZZZ-Z^\prime mixing angle. We point out that the proposed experiments to search for μe\mu-e conversion in nuclei have good chances to find evidence of lepton flavour violation, either in the case that new exotic fermions are present at the electroweak scale, or if a new neutral gauge boson ZZ^\prime of E6_6 origin lighter than a few TeV exists.

Keywords

Cite

@article{arxiv.hep-ph/9306251,
  title  = {$\mu$-$e$ conversion in nuclei and Z$^\prime$ physics},
  author = {J. Bernabeu and E. Nardi and D. Tommasini},
  journal= {arXiv preprint arXiv:hep-ph/9306251},
  year   = {2008}
}

Comments

Plain Tex, 24 pages, + 2 PostScript figure appended after \bye (and available upon request), UM-TH 93--08, FTUV 93-14