Time-odd mean fields in the rotating frame: microscopic nature of nuclear magnetism
arXiv:nucl-th/0006034 · doi:10.1103/PhysRevC.62.031302
Abstract
The microscopic role of nuclear magnetism in rotating frame is investigated for the first time in the framework of the cranked relativistic mean field theory. It is shown that nuclear magnetism modifies the expectation values of single-particle spin, orbital and total angular momenta along the rotational axis effectively creating additional angular momentum. This effect leads to the increase of kinematic and dynamic moments of inertia at given rotational frequency and has an impact on effective alignments.
16 pages, 4 figures, submitted to Physical Review C
References in corpus (2)
Cited by in corpus (34)
- The effective force NL3 revisited
- Global performance of covariant energy density functionals: ground state observables of even-even nuclei and the estimate of theoretical uncertainties
- The limits of the nuclear landscape explored by the relativistic continuum Hatree-Bogoliubov theory
- Gamow-Teller strength and the spin-isospin coupling constants of the Skyrme energy functional
- Cranked Relativistic Hartree-Bogoliubov Theory: probing the gateway to superheavy nuclei
- One-quasiparticle States in the Nuclear Energy Density Functional Theory
- Fission barriers in covariant density functional theory: extrapolation to superheavy nuclei
- Deformed relativistic Hartree-Bogoliubov theory in continuum with point coupling functional: examples of even-even Nd isotopes
- Pairing and rotational properties of actinides and superheavy nuclei in covariant density functional theory
- Time-odd mean fields in covariant density functional theory I. Non-rotating systems
- Time-odd mean fields in covariant density functional theory: Rotating systems
- The tensor part of the Skyrme energy density functional. III. Time-odd terms at high spin
- Effects of pairing, continuum, and deformation on particles in the classically forbidden regions for Mg isotopes
- From superdeformation to extreme deformation and clusterization in the N~Z nuclei of the A~40 mass region
- Properties of odd nuclei and the impact of time-odd mean fields: A systematic Skyrme-Hartree-Fock analysis
- Optimized Dirac Woods-Saxon basis for covariant density functional theory
- Covariant density functional theory input for r-process simulations in actinides and superheavy nuclei: the ground state and fission properties
- Large-Scale Self-Consistent Nuclear Mass Calculations
- Additivity of effective quadrupole moments and angular momentum alignments in the A~130 nuclei
- Rotational excitations in rare-earth nuclei: a comparative study within three cranking models with different mean fields and the treatments of pairing correlations
- Hartree-Fock-Bogoliubov theory for odd-mass nuclei with a time-odd constraint and application to deformed halo nuclei
- Constraining the nuclear energy density functional with quantum Monte Carlo calculations
- Yrast band of 109Ag described by tilted axis cranking covariant density functional theory with a separable pairing force
- Hyperdeformation in the cranked relativistic mean field theory: the Z=40-58 part of nuclear chart
- Magnetic rotations in 198Pb and 199Pb within covariant density functional theory with pairing correlations
- Band terminations in density functional theory
- Addressing spectroscopic quality of covariant density functional theory
- New high-spin structure and possible chirality in In
- Configuration interaction projected density functional theory: effects of four-quasiparticle configurations and time-odd interactions
- Nuclear chart in covariant density functional theory with dynamical correlations: From Oxygen to Tin
- Hyperdeformation in the Cd isotopes: a microscopic analysis
- Global study of separable pairing interaction in covariant density functional theory
- Nuclear magnetic moments in covariant density functional theory
- Model for independent particle motion