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Rotating nuclei: from ground state to the extremes of spin and deformation

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arxiv 1510.08400 v1 pith:SAAEDFGK submitted 2015-10-28 nucl-th

Rotating nuclei: from ground state to the extremes of spin and deformation

classification nucl-th
keywords nucleirotatingspindensitydescriptiondiscussfunctionalnuclear
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The rotating nuclei represent one of most interesting subjects for theoretical and experimental studies. They open a new dimension of nuclear landscape, namely, spin direction. Contrary to the majority of nuclear systems, their properties sensitively depend on time-odd mean fields and currents in density functional theories. Moreover, they show a considerable interplay of collective and single-particle degrees of freedom. In this chapter, I discuss the basic features of the description of rotating nuclei in one-dimensional cranking approximation of covariant density functional theory. The successes of this approach to the description of rotating nuclei at low spin in pairing regime and at high spin in unpaired regime in wide range of deformations (from normal to hyperdeformation) are illustrated. I also discuss the recent progress and open questions in our understanding of the role of proton-neutron pairing in rotating nuclei at $N\approx Z$, the physics of band termination and other phenomena in rotating nuclei.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Nonlinear collective flow reveals the breakdown of quadrupole--hexadecapole scaling in heavy ion collisions

    nucl-th 2026-07 conditional novelty 5.0

    The nonlinear flow coefficient ξ6,222 in simulated U+U collisions separates the four (β2, β4) nuclear topology classes, making the sign of the hexadecapole deformation β4 experimentally accessible.