The search for axion-like particles X in muon decays is an excellent opportunity for the MEG II and Mu3e experiments to extend their horizons beyond μ+ → e+γ and μ+→ e+e-e+. A suitable process for both experiments is the two-body decay μ+ → e+X, whose only signature is a monochromatic peak close to the kinematic endpoint of the positron energy spectrum of the μ+ → e+νeν̅μ background. The hunt for such an elusive signal in a vast amount of irreducible background requires extremely accurate theoretical predictions to be implemented in a Monte Carlo event generator. This work presents a new state-of-the-art computation of μ+ → e+νeν̅μ for polarised muons, accomplished with the McMule framework. The calculation includes next-to-next-leading order QED corrections and logarithmically enhanced terms at even higher orders. The results are also used to estimate the sensitivity of both experiments on the branching ratio of μ+ →e+X, in order to evaluate the impact of the theoretical error.

Looking for an axion in a haystack of muons

A. Gurgone
2023-01-01

Abstract

The search for axion-like particles X in muon decays is an excellent opportunity for the MEG II and Mu3e experiments to extend their horizons beyond μ+ → e+γ and μ+→ e+e-e+. A suitable process for both experiments is the two-body decay μ+ → e+X, whose only signature is a monochromatic peak close to the kinematic endpoint of the positron energy spectrum of the μ+ → e+νeν̅μ background. The hunt for such an elusive signal in a vast amount of irreducible background requires extremely accurate theoretical predictions to be implemented in a Monte Carlo event generator. This work presents a new state-of-the-art computation of μ+ → e+νeν̅μ for polarised muons, accomplished with the McMule framework. The calculation includes next-to-next-leading order QED corrections and logarithmically enhanced terms at even higher orders. The results are also used to estimate the sensitivity of both experiments on the branching ratio of μ+ →e+X, in order to evaluate the impact of the theoretical error.
2023
The Physics category includes resources of a broad, general nature that contain materials from all areas of physics, The category also includes resources specifically concerned with the following physics sub-fields: mathematical physics, particle and nuclear physics, physics of fluids and plasmas, quantum physics, and theoretical physics.
Esperti anonimi
Inglese
18
08
https://iopscience.iop.org/article/10.1088/1748-0221/18/08/C08006
no
1
info:eu-repo/semantics/article
262
Gurgone, A.
1 Contributo su Rivista::1.1 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/1490518
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