Calculation of Nuclear Reactions in O16 in the Random-Phase Approximation

Q. Ho-Kim
Phys. Rev. C 8, 1574 – Published 1 November 1973
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Abstract

We present a practical formalism of low-energy nuclear reactions in which the ground-state correlations are treated in the random-phase approximation. The building blocks of the method are the matrix elements of two weakly energy-dependent effective interactions describing particle-hole pair scattering and pair creation or annnihilation in a correlated system. The corresponding transition operators, which give complete information on any nuclear reaction, are then introduced. We apply the method to a study of nucleon scattering, photonuclear, muonuclear reactions proceeding through the 1 states of O16. The single-particle basis states are generated by a local, real Woods-Saxon potential, while the residual interaction has a zero range. In the relatively high excitation energy being studied, the correlations retained in the random-phase approximation affect very little nucleon scattering but reduce transition rates in photonuclear reactions and muon capture by about 8%.

  • Received 1 June 1973

DOI:https://doi.org/10.1103/PhysRevC.8.1574

©1973 American Physical Society

Authors & Affiliations

Q. Ho-Kim*

  • Department of Physics, Université Laval, Quebec, Canada
  • Institut de Physique Nucléaire, 91-Orsay, France

  • *Permanent address.

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Vol. 8, Iss. 5 — November 1973

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