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Unravelling the $WW\gamma$ and $WWZ$ Vertices at the Linear Collider: $\bar{\nu} \nu\gamma$ and $\bar{\nu}\nu\bar{q}q$ final states
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abstract
We perform a detailed analysis of the processes $e^+e^- \rightarrow \bar{\nu} \nu\gamma$ and $\bar{\nu}\nu\bar{q}q$ at future linear $e^+e^-$ colliders and assess their sensitivity to anomalous gauge boson couplings. We consider center of mass energies $\sqrt{s}=$ 350, 500 and 800 GeV. We demonstrate that significant improvements can be obtained if the phase space information for the cross sections is used maximally. At 800 GeV the parameters $\Delta\kappa_{\gamma}$ and $\lambda_{\gamma}$ can be constrained, at 95\% CL, to about 0.02 and 0.01, while the parameters $\Delta\kappa_Z$, $\lambda_Z$ and $\Delta g_1^Z$ can be probed down to about 0.009, 0.002 and 0.004 respectively. The precision of these measurements is likely to be limited by statistical errors at anticipated luminosities at these energies.
Forward citations
Cited by 1 Pith paper
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Optimal sensitivity of anomalous charged triple gauge couplings through $W$ boson helicity at the $e^+e^-$ colliders
SMEFT sensitivities to anomalous WWV couplings at a 3 TeV e+e- collider are improved by 1 to 2 orders of magnitude over LHC limits when using optimal observables and W helicity selection.
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