English

Regularities of Many-body Systems Interacting by a Two-body Random Ensemble

Nuclear Theory 2007-05-23 v4

Abstract

The ground states of all even-even nuclei have angular momentum, II, equal to zero, I=0, and positive parity, π=+\pi=+. This feature was believed to be a consequence of the attractive short-range interaction between nucleons. However, in the presence of two-body random interactions, the predominance of Iπ=0+I^{\pi}=0^+ ground states (0 g.s.) was found to be robust both for bosons and for an even number of fermions. For simple systems, such as dd bosons, spsp bosons, sdsd bosons, and a few fermions in single-jj shells for small jj, there are a few approaches to predict and/or explain spin II ground state (II g.s.) probabilities. An empirical approach to predict II g.s. probabilities is available for general cases, such as fermions in a single-jj (j>7/2j>7/2) or many-jj shells and various boson systems, but a more fundamental understanding of the robustness of 0 g.s. dominance is still out of reach. Further interesting results are also reviewed concerning other robust phenomena of many-body systems in the presence of random two-body interactions, such as the odd-even staggering of binding energies, generic collectivity, the behavior of average energies, correlations, and regularities of many-body systems interacting by a displaced two-body random ensemble.

Keywords

Cite

@article{arxiv.nucl-th/0311050,
  title  = {Regularities of Many-body Systems Interacting by a Two-body Random Ensemble},
  author = {Y. M. Zhao and A. Arima and N. Yoshinaga},
  journal= {arXiv preprint arXiv:nucl-th/0311050},
  year   = {2007}
}

Comments

finalized version, review article (103 pages, 23 figures). accepted by Physics Reports