English

Nuclear-level effective theory of $\mu\rightarrow e$ conversion: Inelastic process

High Energy Physics - Phenomenology 2024-09-18 v1 High Energy Physics - Experiment Nuclear Theory

Abstract

Mu2e and COMET will search for electrons produced via the neutrinoless conversion of stopped muons bound in 1s atomic orbits of 27^{27}Al, improving existing limits on charged lepton flavor violation (CLFV) by roughly four orders of magnitude. Conventionally, μe\mu\rightarrow e conversion experiments are optimized to detect electrons originating from transitions where the nucleus remains in the ground state, thereby maximizing the energy of the outgoing electron. Clearly, detection of a positive signal in forthcoming experiments would stimulate additional work - including subsequent conversion experiments using complementary nuclear targets - to further constrain the new physics responsible for CLFV. Here we argue that additional information can be extracted without the need for additional experiments, by considering inelastic conversion in 27^{27}Al. Transitions to low-lying nuclear excited states can modify the near-endpoint spectrum of conversion electrons, with the ratio of the elastic and inelastic responses being sensitive to the underlying CLFV operator. We extend the nuclear effective theory of μe\mu\rightarrow e conversion to the inelastic case, which adds five new response functions to the six that arise for the elastic process. We evaluate these nuclear response functions in 27^{27}Al and calculate the resulting conversion-electron signal, taking into account the resolution anticipated in Mu2e/COMET. We find that 27^{27}Al is an excellent target choice from the perspective of the new information that can be obtained from inelastic μe\mu \rightarrow e conversion.

Keywords

Cite

@article{arxiv.2409.10581,
  title  = {Nuclear-level effective theory of $\mu\rightarrow e$ conversion: Inelastic process},
  author = {W. C. Haxton and Evan Rule},
  journal= {arXiv preprint arXiv:2409.10581},
  year   = {2024}
}

Comments

31 pages, 7 Figures, 6 Tables. To be submitted to PRC

R2 v1 2026-06-28T18:46:41.096Z