An Axial UA(1)Lμ-Lτ: UV Completion and Experimental Searches
Rundong Fang, Jinhui Guo, Ming Li, Jia Liu, Xiao-Ping Wang, Yiheng Xiong
Abstract
We propose an anomaly-free and renormalizable axial UA(1)Lμ-Lτ model and study its experimental signatures for A' masses from the MeV scale to the TeV scale. The opposite charges of the left- and right-handed charged leptons forbid the usual muon and tau Yukawa interactions. Their masses are instead generated by a singlet scalar and heavy vector-like leptons through a universal-seesaw mechanism. We focus on heavy vector-like leptons, small light--heavy mixing, and ms10~GeV. In this limit, the observables considered here depend mainly on (mA',gX), while the other model parameters are restricted by mixing and perturbativity. We confront this benchmark with current experimental searches. For neutrino trident production, our finite-mμ calculation shows that A' modifies the axial weak coefficient, rather than the vector coefficient relevant to the usual Lμ-Lτ model. The longitudinal mode enhances muon bremsstrahlung and gives a negative contribution to (g-2)μ; the latter dominates over the scalar contribution in our benchmark. Combining these results with invisible meson decays and four-muon resonance searches, we summarize the phenomenological constraints in the (mA',gX) plane. For mA' mμ, vector and axial final-state-radiation rates become nearly identical, so the corresponding collider limits can be obtained by rate matching. At a future muon collider, the total rate alone does not fully resolve the interaction structure, whereas angular distributions, especially the forward--backward asymmetry in μ+μ-τ+τ-, retain direct sensitivity to chirality.
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