We use the classical Bogomol’nyi-Prasad-Sommerfield (BPS) soliton solutions of the BPS Skyrme model together with corrections from the collective coordinate quantization of spin and isospin, the electrostatic Coulomb energies, and a small explicit breaking of the isospin symmetry-accounting for the proton-neutron mass difference-to calculate nuclear binding energies. We find that the resulting binding energies are already in excellent agreement with their physical values for heavier nuclei, demonstrating thereby that the BPS Skyrme model is a distinguished starting point for a detailed quantitative investigation of nuclear and low-energy strong interaction physics
AbstractThe Skyrme Model seems unable to reproduce the small binding energy in nuclei. It was realiz...
AbstractThe Skyrme model is a low-energy effective field theory for QCD, where the baryons emerge as...
The Skyrme model is an effective theory for the description of nucleons, nuclei and pions, where th...
Recently, within the space of generalized Skyrme models, a submodel with a Bogomol'nyi-Prasad-Sommer...
We present a concrete model of a low energy effective field theory of QCD, the well-known Skyrme Mod...
AbstractWe present a concrete model of a low energy effective field theory of QCD, the well-known Sk...
We present a concrete model of a low energy effective field theory of QCD, the well-known Skyrme Mod...
The ambition of the project is to describe baryons and nuclei using a particular type of theory, kno...
We present a concrete model of a low energy effective field theory of QCD, the well-known Skyrme Mod...
Nuclear binding energies are investigated in two variants of the Skyrme model: the first replaces th...
AbstractAlthough it provides a relatively good picture of the nucleons, the Skyrme Model is unable t...
The differences of the masses of nuclear isotopes with atomic numbers between \~10 and ~30 can be de...
The BPS Skyrme model has been demonstrated already to provide a physically intriguing and quantitati...
AbstractAlthough it provides a relatively good picture of the nucleons, the Skyrme Model is unable t...
AbstractThe BPS Skyrme model has been demonstrated already to provide a physically intriguing and qu...
AbstractThe Skyrme Model seems unable to reproduce the small binding energy in nuclei. It was realiz...
AbstractThe Skyrme model is a low-energy effective field theory for QCD, where the baryons emerge as...
The Skyrme model is an effective theory for the description of nucleons, nuclei and pions, where th...
Recently, within the space of generalized Skyrme models, a submodel with a Bogomol'nyi-Prasad-Sommer...
We present a concrete model of a low energy effective field theory of QCD, the well-known Skyrme Mod...
AbstractWe present a concrete model of a low energy effective field theory of QCD, the well-known Sk...
We present a concrete model of a low energy effective field theory of QCD, the well-known Skyrme Mod...
The ambition of the project is to describe baryons and nuclei using a particular type of theory, kno...
We present a concrete model of a low energy effective field theory of QCD, the well-known Skyrme Mod...
Nuclear binding energies are investigated in two variants of the Skyrme model: the first replaces th...
AbstractAlthough it provides a relatively good picture of the nucleons, the Skyrme Model is unable t...
The differences of the masses of nuclear isotopes with atomic numbers between \~10 and ~30 can be de...
The BPS Skyrme model has been demonstrated already to provide a physically intriguing and quantitati...
AbstractAlthough it provides a relatively good picture of the nucleons, the Skyrme Model is unable t...
AbstractThe BPS Skyrme model has been demonstrated already to provide a physically intriguing and qu...
AbstractThe Skyrme Model seems unable to reproduce the small binding energy in nuclei. It was realiz...
AbstractThe Skyrme model is a low-energy effective field theory for QCD, where the baryons emerge as...
The Skyrme model is an effective theory for the description of nucleons, nuclei and pions, where th...