https://doi.org/10.1140/epjc/s10052-014-2988-y
Regular Article - Theoretical Physics
Vector-boson pair production and electroweak corrections in HERWIG++
1
Karlsruhe Institute of Technology (KIT), Institut für Theoretische Physik (IThP), 76131 , Karlsruhe, Germany
2
Karlsruhe Institute of Technology (KIT), Institut für Theoretische Teilchenphysik (TTP), 76131 , Karlsruhe, Germany
* e-mail: tobias.kasprzik@kit.edu
Received:
29
January
2014
Accepted:
19
July
2014
Published online:
12
August
2014
The detailed study of vector-boson pair production processes at the LHC will lead to a better understanding of electroweak physics. As pointed out before, a consistent inclusion of higher-order electroweak effects in the analysis of corresponding experimental data may be crucial to properly predict the relevant phenomenological features of these important reactions. Those contributions lead to dramatic distortions of invariant-mass and angular distributions at high energies, but may also significantly affect the cross section near threshold, as is the case e.g. for Z-pairs. For this reason, we present an analysis of the next-to-leading-order electroweak corrections to WW, WZ, and ZZ production at the LHC, taking into account mass effects as well as leptonic decays. Hence, our predictions are valid in the whole kinematic reach of the LHC and, moreover, respect the spin correlations of the leptonic decay products at next-to-leading-order accuracy. Starting from these fixed-order results, a simple and straightforward method is motivated to combine the electroweak corrections with state-of-the-art Monte Carlo predictions, focusing on a meaningful combination of higher-order electroweak and QCD effects. To illustrate our approach, the electroweak corrections are implemented in the HERWIG++ generator, and their phenomenological effects within a QCD environment are studied explicitly.
© The Author(s), 2014