A microscopic derivation of nuclear collective rotation-vibration model, axially symmetric case

被引:0
|
作者
Gulshani, P. [1 ]
机构
[1] NUTECH Serv, 3313 Fenwick Crescent, Mississauga, ON L5L 5N1, Canada
关键词
multi-particle rotation; multi-particle vibration; intrinsic motion; angular momentum; moments of inertia; canonical transformation; constrained variational method; time-reversal invariance; self-consistency; cranking model; axial symmetry; rotational-band termination or cutoff; DEPENDENT EFFECTIVE INTERACTIONS; SELF-CONSISTENT PERTURBATION; FOCK-BOGOLIUBOV EQUATIONS; LIGHT-NUCLEI; QUADRUPOLE-MOMENTS; QUANTUM-MECHANICS; CRANKING-MODEL; EVEN NUCLEI; DATA SHEETS; STATES;
D O I
10.1139/cjp-2015-0371
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
We derive a microscopic version of the successful phenomenological hydrodynamic model of Bohr-Davydov-Faessler-Greiner for collective rotation-vibration motion of an axially symmetric deformed nucleus. The derivation is not limited to small oscillation amplitudes. The nuclear Schrodinger equation is canonically transformed to collective coordinates, and then linearized using a constrained variational method. The associated constraints are imposed on the wavefunction rather than on the particle coordinates. This approach yields three self-consistent, time-reversal invariant, cranking-type Schrodinger equations for the rotation-vibration and intrinsic motions, and a self-consistency equation. For harmonic oscillator mean-field potentials, these equations are solved in closed forms and applied to the ground-state rotational bands in some axially symmetric nuclei. The results are compared with those of other models and related measured data.
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页码:79 / 88
页数:10
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