Renormalisation group analysis of scalar Leptoquark couplings addressing flavour anomalies: emergence of lepton-flavour universality
Marco Fedele, Felix Wuest, Ulrich Nierste

TL;DR
This paper analyzes how scalar leptoquark couplings evolve under renormalization group flow to address flavour anomalies, revealing fixed points that imply lepton-flavour universality and setting bounds on unification scales.
Contribution
It provides a detailed RG analysis of scalar leptoquark couplings, showing how they can lead to lepton-flavour universality and constraining unification scales based on flavour anomaly data.
Findings
Leptoquark couplings to electrons and muons converge to the same fixed point.
Couplings to taus have opposite fixed points, affecting $b o s au^+ au^-$ predictions.
Upper bounds on unification scale $M_{QLU}$ between $10^{8}$ and $10^{11}$ GeV.
Abstract
Leptoquarks with masses between 2 TeV and 50 TeV are commonly invoked to explain deviations between data and Standard-Model (SM) predictions of several observables in the decays and with . While Leptoquarks appear in theories unifying quarks and leptons, the corresponding unification scale is typically many orders of magnitude above this mass range. We study the case that the mass gap between the electroweak scale and is only populated by scalar Leptoquarks and SM particles, restricting ourselves to scenarios addressing the mentioned flavour anomalies, and determine the renormalisation-group evolution of Leptoquark couplings to fermions below . In the most general case, we consider three SU(2) triplet Leptoquarks , , which couple quark doublets to the lepton doublet…
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Taxonomy
TopicsParticle physics theoretical and experimental studies · Dark Matter and Cosmic Phenomena · Computational Physics and Python Applications
