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Charged Lepton Flavor Violation $\mu\rightarrow e\gamma$ in $\mu-\tau$ Symmetric SUSY SO(10) mSUGRA, NUHM, NUGM, and NUSM theories and LHC

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arxiv 1410.1265 v3 pith:B2P3N7GT submitted 2014-10-06 hep-ph

classification hep-ph
keywords gammarightarrowprocessesbeenchargedclfvdecayflavor
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Charged Lepton Flavor Violation (cLFV) processes like $ \mu \rightarrow e \gamma $ are rare decay processes, that are another signature of physics beyond Standard Model (BSM). These processes have been studied in various models, that could explain neutrino oscillations and mixings. In this work, we present bounds on cLFV decay $ \mu \rightarrow e \gamma $ in a $ \mu $-$ \tau $ symmetric SUSY SO(10) theory, using type I seesaw mechanism. The updated constraints on BR($ \mu \rightarrow e \gamma $) from MEG experiment, recently measured value of Higgs mass at LHC and value of $\theta_{13}$ from reactor data have been used. We present our results in mSUGRA, NUHM, NUGM and NUSM models, and sensitivity to test these theories at next run of LHC is also discussed.

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  1. Analytical Soft SUSY Spectrum in Supersymmetric Models in Light of $ S_{4} \times Z_{n} $ flavor symmetric SUSY SO(10) theory

    hep-ph 2019-08 conditional novelty 4.0 of 10

    In an S4 x Zn flavor-symmetric SO(10) SUSY model with type-II seesaw, the mu-to-e-gamma branching ratio constrains CMSSM, NUHM and NUSM parameter space, with MEG-II projected to probe most remaining regions.

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