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arXiv · hep-ph/0401144

Neutrino magnetic moments and photo-disintegration of deuterium

Abstract

Neutrinos with non-zero magnetic moments can dissociate deuterium nuclei by a photon exchange, in addition to the weak neutral current process. We calculate the neutrino-magnetic moment induced photo-dissociation cross section of deuterium using the equivalent photon method. This process would contribute extra events to the neutral current reaction which is observed with high precision in the salt-phase of SNO experiment. Using the SNO data and the recent laboratory measurements of the $^7 Be (p, γ) ^8 B$ reaction which give a more precise value of the solar $^8 B$ flux we find that the neutrino effective magnetic moment is $μ_{eff}^2 = (-2.76 \pm 1.46) \times 10^{-16} μ_B^2$ which can be interpreted as an upper bound $|μ_{eff}| < 3.71 \times 10^{-9} μ_B$ (at $95% CL$) on the neutrino magnetic moments.

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BibTeXRIS

J. A. Grifols, Eduard Masso, Subhendra Mohanty. 2004-03-09. Neutrino magnetic moments and photo-disintegration of deuterium. https://doi.org/10.1016/j.physletb.2004.03.013

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