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arXiv · hep-ph/9705478

Constraints on the parameters of the Left Right Mirror Model

Abstract

We study some phenomenological constraints on the parameters of a left right model with mirror fermions (LRMM) that solves the strong CP problem. In particular, we evaluate the contribution of mirror neutrinos to the invisible Z decay width (Γ_Z^{inv}), and we find that the present experimental value on Γ_Z^{inv}, can be used to place an upper bound on the Z-Z' mixing angle that is consistent with limits obtained previously from other low-energy observables. In this model the charged fermions that correspond to the standard model (SM) mix with its mirror counterparts. This mixing, simultaneously with the Z-Z' one, leads to modifications of the Γ(Z --> f \bar{f}) decay width. By comparing with LEP data, we obtain bounds on the standard-mirror lepton mixing angles. We also find that the bottom quark mixing parameters can be chosen to fit the experimental values of R_b, and the resulting values for the Z-Z' mixing angle do not agree with previous bounds. However, this disagreement disappears if one takes the more recent ALEPH data.

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Victoria E. Ceron, Umberto Cotti, J. Lorenzo Diaz-Cruz, Mario Maya. 1997-05-30. Constraints on the parameters of the Left Right Mirror Model. https://doi.org/10.1103/physrevd.57.1934

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