Gravitational Effects on Measurements of the Muon Dipole Moments
arXiv:1603.00127 · doi:10.1016/j.nuclphysb.2016.08.011
Abstract
If the technology for muon storage rings one day permits sensitivity to precession at the order of Hz, the local gravitational field of Earth can be a dominant contribution to the precession of the muon, which, if ignored, can fake the signal for a nonzero muon electric dipole moment (EDM). Specifically, the effects of Earth's gravity on the motion of a muon's spin is indistinguishable from it having a nonzero EDM of magnitude e cm in a storage ring with vertical magnetic field of 1 T, which is significantly larger than the expected upper limit in the Standard Model, e cm. As a corollary, measurements of Earth's local gravitational field using stored muons would be a unique test to distinguish classical gravity from general relativity with a bonafide quantum mechanical entity, i.e., an elementary particle's spin.
5 pages; corrected calculation, qualitative results unchanged
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Cited by in corpus (4)
- Large long-distance contributions to the electric dipole moments of charged leptons in the standard model
- Nuclear electric dipole moment in the cluster model with a triton: Li and B
- Quantification of GR effects in muon g-2, EDM and other spin precession experiments
- Clarification on theoretical predictions for general relativistic effects in frozen spin storage rings