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Phys. Rev. C 80, 027302 (2009) [4 pages]

Model space truncation in shell-model fits

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G. F. Bertsch1 and C. W. Johnson2
1Institute for Nuclear Theory and Department of Physics, University of Washington, Seattle, Washington, USA
2Department of Physics, San Diego State University, San Diego, California, USA

Received 13 July 2009; published 20 August 2009

We carry out an interacting shell-model study of binding energies and spectra in the sd-shell nuclei to examine the effect of truncation of the shell-model spaces. Starting with a Hamiltonian defined in a larger space and truncating to the sd shell, the binding energies are strongly affected by the truncation, but the effect on the excitation energies is an order of magnitude smaller. We then refit the matrix elements of the two-particle interaction to compensate for the space truncation and find that it is easy to capture 90% of the binding energy shifts by refitting a few parameters. With the full parameter space of the two-particle Hamiltonian, we find that both the binding energies and the excitation energy can be fitted with remaining residual error about 5% of the average error from the truncation. Numerically, the rms initial error associated with our Hamiltonian is 3.4 MeV and the remaining residual error is 0.16 MeV. This is comparable to the empirical error found in sd-shell interacting shell-model fits to experimental data [B. A. Brown and W. A. Richter, Phys. Rev. C 74, 034315 (2006)].

© 2009 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevC.80.027302
DOI:
10.1103/PhysRevC.80.027302
PACS:
21.60.Cs