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Multireference covariant density-functional theory for the low-lying states of odd-mass nuclei

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arxiv 2311.15305 v2 pith:6OYLT2PU submitted 2023-11-26 nucl-th

classification nucl-th
keywords low-lyingnucleiodd-massstatesconfigurationscovariantdensity-functionalenergy
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abstract

We extend multireference covariant density-functional theory (MR-CDFT) based on a relativistic point-coupling energy functional to describe the low-lying states of odd-mass nuclei. The nuclear wave function is constructed as a superposition of quadrupole-octupole deformed mean-field configurations, with projection onto angular momentum, particle numbers, and parity within the framework of the generator coordinate method. Using $^{25}$Mg as an example, we calculate the energy spectrum, electric multipole, and magnetic dipole transition strengths based on three different schemes for the mean-field configurations of odd-mass nuclei. We find that the low-energy structure of $^{25}$Mg is reasonably reproduced in all three schemes. In particular, the effect of octupole correlation is illustrated in the application to the low-lying parity doublets of $^{21}$Ne. This work demonstrates the success of the MR-CDFT for the low-lying states of odd-mass nuclei with possible strong quadruple-octupole correlations.

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  1. Effects of beyond-mean-field correlations on nuclear Schiff moments

    nucl-th 2025-07 conditional novelty 7.0 of 10

    Beyond-mean-field shape mixing suppresses the octupole-enhanced Schiff moment in 225Ra and alters the Schiff moments of 129Xe and 199Hg, with intermediate-state contributions correlating with E1 transition strengths.

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