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PHYS08200604017 Manimala Mitra - Homi Bhabha National Institute

PHYS08200604017 Manimala Mitra - Homi Bhabha National Institute

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with five physical degrees of freedom (H 0 , h 0 , A 0 , H ± ). Working within the framework of<br />

a softly broken Z 2 symmetry, the mass of the light Higgs h 0 is determined by the standard<br />

model Higgs vacuum expectation value (v ∼ 10 2 GeV) as well as by the extent of the Z 2<br />

symmetry breaking coupling λ 5 , whereas all the other Higgs masses are governed by the<br />

standard model Higgs vacuum expectation value v. Hence, in our model it is possible to<br />

accommodate a light Higgs state h 0 . However, the presence of the light Higgs does not<br />

violate theLEP bound, due to thevanishingly small Z−Z−h 0 coupling. Dueto theorder<br />

of magnitude difference between the two vacuum expectation values v and v ′ , the mixing<br />

angle α between the two neutral Higgs h 0 and H 0 is proportional to the ratio of the two<br />

vacuum expectation values (tanβ = v′<br />

v ) and is extremely small tan2α ∼ tanβ ∼ 10−6 .<br />

Wehavestudiedindetailtheproductionandsubsequent decayofthetripletfermions<br />

at LHC. Triplet fermion production at the LHC is mostly governed by the gauge boson<br />

mediated partonicsubprocesses. Once produced, thetriplet fermion candecay todifferent<br />

final state particles such as to a lepton+Higgs or to a lepton+ gauge boson. In our model,<br />

due to the large Yukawa coupling Y Σ and small value of the mixing angle α as well as<br />

tanβ, the triplet fermions (Σ ± , Σ 0 ) decay predominantly into standard model leptons<br />

along with the neutral and charged Higgses h 0 , A 0 , H ± . The other decay modes where<br />

triplet fermions decay into a standard model lepton along with the neutral Higgs H 0 or<br />

the standard model gauge bosons is highly suppressed. The dominant decay of the triplet<br />

fermion into a standard model lepton and a Higgs h 0 , A 0 , H ± is more than 10 11 times<br />

larger compared to the one Higgs doublet type-III seesaw scenario.<br />

The different decay modes of the triplet fermions are inherently linked with the<br />

neutrino phenomenology. In particular, the exact or approximate µ−τ symmetry in the<br />

neutrino sector distinguishes among the different leptonic states when the triplet fermion<br />

decays into a standard model lepton and a Higgs. The µ−τ symmetry in the neutrino<br />

sector provide equal opportunity to µ and τ states to be the leptonic final states, whereas<br />

it forbids the third generation of charged triplet fermions to decay into electron state e in<br />

the decay of 3rd generation of triplet fermions..<br />

We have also looked into different Higgs decay modes and the possible collider<br />

signatures ofour model. In theHiggs sector, the different Higgsdecay modes aregoverned<br />

bytheYukawacouplingsandalsobythesmallmixingangleαaswellastanβ. Theneutral<br />

Higgs predominantly decays to 2b while the dominant decay mode for the charged Higgs<br />

H ± is H ± → W ± h 0 . Other than this, a distinctive feature of our model is the displaced<br />

vertex of the Higgs h 0 . Unlike the type-III seesaw with one Higgs doublet, in our model<br />

the triplet fermions do not have any displaced vertex. The type-III seesaw with two Higgs<br />

doublet canbeverified atLHC via thedifferent collider signatures which thismodel offers.<br />

We have calculated the effective cross sections for these channels.<br />

In charper 4 [2], we have build a model of R-parity violating supersymmetry and<br />

discussed the neutrino mass generation. The observed data on solar and atmospheric<br />

neutrino mass splitting constrains the number of triplet fermion generation to be mini-<br />

171

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