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arXiv · chao-dyn/9712010

Collectivity Embedded in Complex Spectra of Finite Interacting Fermi Systems: Nuclear Example

Abstract

The mechanism of collectivity coexisting with chaos in a finite system of strongly interacting fermions is investigated. The complex spectra are represented in the basis of two-particle two-hole states describing the nuclear double-charge exchange modes in $^{48}$Ca. An example of $J^π=0^-$ excitations shows that the residual interaction, which generically implies chaotic behavior, under certain specific and well identified conditions may create strong transitions, even much stronger than those corresponding to a pure mean-field picture. Such an effect results from correlations among the off-diagonal matrix elements, is connected with locally reduced density of states and a local minimum in the information entropy.

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S. Drozdz, S. Nishizaki, J. Speth, M. Wojcik. 1997-12-10. Collectivity Embedded in Complex Spectra of Finite Interacting Fermi Systems: Nuclear Example. https://doi.org/10.1103/physreve.57.4016

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