Theoretical expectations for the muon's electric dipole moment

We examine the muon's electric dipole moment d μ from a variety of theoretical perspectives. We point out that the reported deviation in the muon's g−2 can be due partially or even entirely to a new physics contribution to the muon's electric dipole moment. In fact, the recent g−2 mea...

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Bibliographic Details
Published inNuclear physics. B Vol. 613; no. 1; pp. 366 - 381
Main Authors Feng, Jonathan L., Matchev, Konstantin T., Shadmi, Yael
Format Journal Article
LanguageEnglish
Published Elsevier B.V 08.10.2001
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Summary:We examine the muon's electric dipole moment d μ from a variety of theoretical perspectives. We point out that the reported deviation in the muon's g−2 can be due partially or even entirely to a new physics contribution to the muon's electric dipole moment. In fact, the recent g−2 measurement provides the most stringent bound on d μ to date. This ambiguity could be definitively resolved by the dedicated search for d μ recently proposed. We then consider both model-independent and supersymmetric frameworks. Under the assumptions of scalar degeneracy, proportionality, and flavor conservation, the theoretical expectations for d μ in supersymmetry fall just below the proposed sensitivity. However, nondegeneracy can give an order of magnitude enhancement, and lepton flavor violation can lead to d μ∼10 −22 e cm , two orders of magnitude above the sensitivity of the d μ experiment. We present compact expressions for leptonic dipole moments and lepton flavor violating amplitudes. We also derive new limits on the amount of flavor violation allowed and demonstrate that approximations previously used to obtain such limits are highly inaccurate in much of parameter space.
ISSN:0550-3213
1873-1562
DOI:10.1016/S0550-3213(01)00383-2