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arXiv · atom-ph/9604005

Limits on the monopole magnetic field from measurements of the electric dipole moments of atoms, molecules and the neutron

Abstract

A radial magnetic field can induce a time invariance violating electric dipole moment (EDM) in quantum systems. The EDMs of the Tl, Cs, Xe and Hg atoms and the neutron that are produced by such a field are estimated. The contributions of such a field to the constants, $χ$ of the T,P-odd interactions $χ_e {\bf N} \cdot {\bf s}/s$ and $χ_N {\bf N} \cdot {\bf I}/I$ are also estimated for the TlF, HgF and YbF molecules (where ${\bf s}$ (${\bf I}$) is the electron (nuclear) spin and ${\bf N}$ is the molecular axis). The best limit on the contact monopole field can be obtained from the measured value of the Tl EDM. The possibility of such a field being produced from polarization of the vacuum of electrically charged magnetic monopoles (dyons) by a Coulomb field is discussed, as well as the limit on these dyons. An alternative mechanism involves chromomagnetic and chromoelectric fields in QCD.

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BibTeXRIS

V. V. Flambaum, D. W. Murray. 1996-07-16. Limits on the monopole magnetic field from measurements of the electric dipole moments of atoms, molecules and the neutron. https://doi.org/10.1103/physreva.55.1736

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