Superfluid LDA (SLDA): Local Density Approximation for Systems with Superfluid Correlations
arXiv:nucl-th/0310066 · doi:10.1142/S0218301304001874
Abstract
We present a concise account of our development of the first genuine Local Density Approximation (LDA) to the Energy Density Functional (EDF) for fermionic systems with superfluid correlations, with a particular emphasis to nuclear systems.
Talk given at 10th Nuclear Physics Workshop Marie and Pierre Curie, September 24-28, 2003, Kazimierz Dolny, Poland. A few references were added and the text was expanded by one page in response to referee's suggestions
References in corpus (8)
- Superfluid Fermi Gases with Large Scattering Length
- Constraining Hadronic Superfluidity with Neutron Star Precession
- Renormalization group approach to neutron matter: quasiparticle interactions, superfluid gaps and the equation of state
- Quantum Monte Carlo Calculations of Neutron Matter
- The Vortex State in a Strongly Coupled Dilute Atomic Fermionic Superfluid
- Energy Density Functional Approach to Superfluid Nuclei
- Hartree-Fock-Bogoliubov theory versus local-density approximation for superfluid trapped fermionic atoms
- Spatial structure of a vortex in low density neutron matter
Cited by in corpus (12)
- Superfluidity in nuclear systems and neutron stars
- Local Density Functional Theory for Superfluid Fermionic Systems: The Unitary Gas
- Toward ab initio density functional theory for nuclei
- The fission barriers in Actinides and superheavy nuclei in covariant density functional theory
- Effective contact pairing forces from realistic calculations in infinite homogeneous nuclear matter
- Extended Thomas-Fermi Density Functional for the Unitary Fermi Gas
- Pairing renormalization and regularization within the local density approximation
- A realistic model of superfluidity in the neutron star inner crust
- Shock waves in strongly interacting Fermi gas from time-dependent density functional calculations
- Large-Scale Self-Consistent Nuclear Mass Calculations
- The vortex state in the BEC to BCS crossover: a path-integral description
- Pairing in Nuclei