English

Understanding emergent collectivity and clustering in nuclei from a symmetry-based no-core shell-model perspective

Nuclear Theory 2017-04-19 v1

Abstract

We present a detailed discussion of the structure of the low-lying positive-parity energy spectrum of 12^{12}C from a no-core shell-model perspective. The approach utilizes a fraction of the usual shell-model space and extends its multi-shell reach via the symmetry-based no-core symplectic shell model (NCSpM) with a simple, physically-informed effective interaction. We focus on the ground-state rotational band, the Hoyle state and its 2+2^+ and 4+4^+ excitations, as well as the giant monopole 0+0^+ resonance, which is a vibrational breathing mode of the ground state. This, in turn, allows us to address the open question about the structure of the Hoyle state and its rotational band. In particular, we find that the Hoyle state is best described through deformed prolate collective modes rather than vibrational modes, while we show that the higher-lying giant monopole 0+0^+ resonance resembles the oblate deformation of the 12^{12}C ground state. In addition, we identify the giant monopole 0+0^+ and quadrupole 2+2^+ resonances of selected light and intermediate-mass nuclei, along with other observables of 12^{12}C, including matter rms radii, electric quadrupole moments, as well as E2E2 and E0E0 transition rates.

Keywords

Cite

@article{arxiv.1611.00060,
  title  = {Understanding emergent collectivity and clustering in nuclei from a symmetry-based no-core shell-model perspective},
  author = {A. C. Dreyfuss and K. D. Launey and T. Dytrych and J. P. Draayer and R. B. Baker and C. M. Deibel and C. Bahri},
  journal= {arXiv preprint arXiv:1611.00060},
  year   = {2017}
}

Comments

12 pages, 5 figures; to be submitted to Phys. Rev. C