Density functional approaches to nuclear dynamics
arXiv:1209.5385 · doi:10.1088/1742-6596/387/1/012015
Abstract
We present background concepts of the nuclear density functional theory (DFT) and applications of the time-dependent DFT with the Skyrme energy functional for nuclear response functions. Practical methods for numerical applications of the time-dependent Hartree-Fock-Bogoliubov theory (TDHFB) are proposed; finite amplitude method and canonical-basis TDHFB. These approaches are briefly reviewed and some numerical applications are shown to demonstrate their feasibility.
10 pages, 2 figures, Talk at XXXV Symposium on Nuclear Physics, Cocoyok, Mexico, Jan. 3 - 6, 2012
References in corpus (9)
- Canonical-basis time-dependent Hartree-Fock-Bogoliubov theory and linear-response calculations
- Isovector Giant Dipole Resonance from the 3D Time-Dependent Density Functional Theory for Superfluid Nuclei
- Finite amplitude method for the quasi-particle-random-phase approximation
- Emergence of pygmy dipole resonances: Magic numbers and neutron skins
- Intrinsic-Density Functionals
- Multipole strength function of deformed superfluid nuclei made easy
- Self-consistent Skyrme QRPA for use in axially-symmetric nuclei of arbitrary mass
- Existence of a Density Functional for an Intrinsic State
- Scalar Nature of the Nuclear Density Functional