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Updated: Dec 11, 2025

Setting Limits on Supersymmetry Using Simplified Models
Published on: November 15, 2013
Lepton flavor violation and dilepton tails at the LHC
Andrei Angelescu1, Darius A Faroughy2, Olcyr Sumensari3,4
1Department of Physics and Astronomy, University of Nebraska-Lincoln, Lincoln, NE 68588 USA.
Abstract:
Starting from a general effective Lagrangian for lepton flavor violation (LFV) in quark-lepton transitions, we derive constraints on the effective coefficients from the high-mass tails of the dilepton processes (with ). The current (projected) limits derived in this paper from LHC data with ( ) can be applied to generic new physics scenarios, including the ones with scalar, vector and tensor effective operators. For purely left-handed operators, we explicitly compare these LHC constraints with the ones derived from flavor-physics observables, illustrating the complementarity of these different probes. While flavor physics is typically more constraining for quark-flavor violating operators, we find that LHC provides the most stringent limits on several flavor-conserving ones. Furthermore, we show that dilepton tails offer the best probes for charm-quark transitions at current luminosities and that they provide competitive limits for tauonic transitions at the high-luminosity LHC phase. As a by-product, we also provide general numerical expressions for several low-energy LFV processes, such as the semi-leptonic decays , and .
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