Study of anomalous gauge boson self-couplings and the role of spin-1 polarizations

Abstract

The prime goal of this thesis is to study anomalous gauge boson self couplings, triple gauge boson couplings in particular, with the help of spin polarization observables of the gauge bosons Z and W in the presence of beam polarizations where ever possible. The neutral triple gauge boson couplings, i.e., ZZZ, ZZγ, Zγγ, are studied in ZZ/Zγ (2lqq/2lγ) production at an e+e- collider with and without beam polarization. Some of these anomalous couplings are also studied in ZZ (4l) production at the LHC. In the charge sector the anomalous gauge boson couplings, i.e., WWZ, WWγ have been studied at an e+e- collider in W+W- (l-lqq) production. The WWZ anomalous couplings are also studied in ZW production at LHC in 3l + missing ET channel. All the analyses at an e+-e- collider have been performed for center-of-mass (CM) energy of 500 GeV and integrated luminosity of 100 fb-1. The analyses at the LHC are performed at 13 TeV CM energy of pp collisions. The cross sections and polarization asymmetries, along with other asymmetries (forward-backward, azimuthal), are used to obtain simultaneous limits on the anomalous couplings using Markov-Chain--Monte-Carlo (MCMC) method in each process. The polarization asymmetries can distinguish between CP-even and CP-odd couplings and help to put tighter constraints on the couplings. The polarization of the initial e- and e+ beam, in case of e+e- collider, are used to increase the signal to background ratio, putting tighter constraints on the anomalous couplings. The polarization asymmetries are instrumental in the measurement of anomalous couplings should a deviation from the SM be observed.

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