Diphotons at the $Z$-pole in Models of the 750 GeV Resonance Decaying to Axion-Like Particles
Alexandre Alves, Alex G. Dias, Kuver Sinha

TL;DR
This paper explores models where a 750 GeV resonance decays into axion-like particles that mimic diphoton signals, analyzing constraints from Z decays and prospects for detecting similar signals at the Z-pole.
Contribution
It provides a detailed effective field theory analysis of ALP-induced diphoton signals, including constraints from Z decays and potential Z-pole diphoton signatures, considering various decay regimes and model scenarios.
Findings
Constraints on ALP couplings from Z decay data
Potential for Z-pole diphoton resonance detection
Feasibility of ALP decay inside electromagnetic calorimeters
Abstract
Models in which the 750 GeV resonance () decays to two light axion-like particles (ALPs ), which in turn decay to collimated photons mimicking the observed signal, are motivated by Hidden Valley scenarios and could also provide a mechanism by which a signal persists while and remain subdued in the near future. We point out that these Hidden Valley like models invoking must also contend with constraints coming from CDF and ATLAS. Within an effective field theory framework, we work out the constraints on the couplings of to and gauge bosons coming from photonic decays and ensuring that the ALPs decay inside the electromagnetic calorimeter, in two regimes - where decays primarily to photons, and where also has hadronic branchings. The analysis is done for…
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