paper

Electromagnetic two-body currents of one- and two-pion range

arXiv:0810.1941 · doi:10.1103/PhysRevC.78.064002

Abstract

Nuclear electromagnetic currents are derived in time-ordered perturbation theory within an effective-field-theory framework including explicit nucleons, isobars, and pions up to one loop, or NLO. The currents obtained at NLO, {\it i.e.} ignoring loop corrections, are used in a study of neutron radiative captures on protons and deuterons at thermal energies, and of =2 and 3 nuclei magnetic moments. The wave functions for =2 are derived from solutions of the Schrödinger equation with the Argonne (AV18) or CD-Bonn (CDB) potentials, while those for =3 are obtained with the hyperspherical-harmonics-expansion method from a realistic Hamiltonian including, in addition to the AV18 or CDB two-nucleon, also a three-nucleon potential. With the strengths of the -excitation currents occurring at NLO determined to reproduce the - cross section and isovector combination of the trinucleon magnetic moments, we find that the cross section and photon circular polarization parameter, measured in - and - processes, are underpredicted by theory, for example the cross section by (11--38)% as the cutoff is increased from 500 to 800 MeV. A complete analysis of the results, in particular their large cutoff dependence, is presented.