Abstract

We comprehensively examine precision predictions for scalar leptoquark pair production at the LHC. In particular, we investigate the impact of lepton t-channel exchange diagrams that are potentially relevant in the context of leptoquark scenarios providing an explanation for the flavour anomalies. We also evaluate the corresponding total rates at the next-to-leading order in QCD. Moreover, we complement this calculation with the resummation of soft-gluon radiation at the next-to-next-to-leading logarithmic accuracy, hence providing the most precise predictions for leptoquark pair production at the LHC to date. Relying on a variety of benchmark scenarios favoured by the anomalies, our results exhibit an interesting interplay between the t-channel diagram contributions, the flavour texture satisfied by the leptoquark Yukawa couplings, the leptoquark masses and their representations under the Standard Model gauge group, as well as the chosen set of parton densities used for the numerical evaluations. The net effect on a cross section turns out to be very non-generic and ranges up to about 60% with respect to the usual next-to-leading-order predictions in QCD (i.e. without any t-channel contribution) for some scenarios considered. Dedicated calculations are thus required for any individual leptoquark model that could be considered in a collider analysis in order to assess the size of the studied corrections. In order to facilitate such calculations we provide dedicated public numerical packages.

Highlights

  • Fundamental representation of the QCD gauge group SU(3)C

  • Relying on a variety of benchmark scenarios favoured by the anomalies, our results exhibit an interesting interplay between the t-channel diagram contributions, the flavour texture satisfied by the leptoquark Yukawa couplings, the leptoquark masses and their representations under the Standard Model gauge group, as well as the chosen set of parton densities used for the numerical evaluations

  • In order to be able to analyse the impact of different improvements to scalar leptoquark pair production that we examine in this study, we first consider two simple setups in which the Standard Model is extended by exactly one species of leptoquarks

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Summary

Theory

In order to set up a generic framework allowing for the most advanced calculations of scalar leptoquark pair production in QCD, we consider a simplified model in which the Standard Model (SM) is minimally extended. Simple models that will be useful to understand specific effects of our calculations, as well as scenarios that are relevant in the light of the flavour anomalies.

Lagrangian and models
Phenomenologically-viable R2 models
A two-leptoquark model inspired by Grand Unification
The singlet-triplet leptoquark model
Scalar leptoquark pair production at fixed order in perturbation theory
Resummation of soft-gluon corrections for scalar leptoquark pair production
Numerical implementation and set-up
MadGraph5_aMC@NLO implementation
POWHEG-BOX implementation
Resummation at the next-to-next-to-leading logarithmic accuracy
Precision predictions for scalar leptoquark pair production
Relative importance of the t-channel contributions, soft-gluon resummation, and the parton densities
NLO-QCD+NNLL ((N)NLO PDFs) NLO-QCD (NLO PDFs)
S1 MSHT20
Predictions for benchmark scenarios relevant for the flavour anomalies
Impact on experimental limits: theoretical errors and extra contributions to rates
Conclusions
Findings
B POWHEG-BOX implementation

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