We present an analysis based on the deformed Quasi Particle Random Phase Approximation, on top of a deformed Hartree-Fock-Bogoliubov description of the ground state, aimed at studying the isoscalar monopole and quadrupole response in a deformed nucleus. This analysis is motivated by the need of understanding the coupling between the two modes and how it might affect the extraction of the nuclear incompressibility from the monopole distribution. After discussing this motivation, we present the main ingredients of our theoretical framework, and we show some results obtained with the SLy4 and SkM* interactions for the nucleus 24Mg
Accurate assessment of the value of the incompressibility coefficient, K-infinity of symmetric nucle...
In order to explore the nature of collective modes in weakly bound nuclei, we have investigated surf...
Realistic nucleon-nucleon interactions transformed via the Unitary Correlation Operator Method (UCOM...
We present a calculation of the properties of vibrational states in deformed, axially-symmetric even...
A self-consistent quasiparticle random-phase approximation (QRPA) model that employs the canonical H...
A self-consistent quasiparticle random-phase approximation (QRPA) model that employs the canonical H...
Density functional theory is a preferred microscopic method for calculation of nuclear properties ov...
We develop a new framework of the deformed quasiparticle-random-phase approximation (QRPA) where the...
We discuss properties of the quadrupole collective excitation of the deformed neutron-rich nucleus $...
Fully consistent axially-symmetric-deformed quasiparticle random phase approximation calculations ha...
Modern nuclear ground-state density-functional theory (DFT) works best in heavy strongly deformed nu...
Based on the Hartree-Fock-Bogoliubov solutions in large deformed coordinate spaces, the finite ampli...
International audienceReliable predictions of the static and dynamic properties of a nucleus require...
Accurate assessment of the value of the incompressibility coefficient, K, of symmetric nuclear matte...
The incompressibility (compression modulus) K0 of infinite symmetric nuclear matter at saturation de...
Accurate assessment of the value of the incompressibility coefficient, K-infinity of symmetric nucle...
In order to explore the nature of collective modes in weakly bound nuclei, we have investigated surf...
Realistic nucleon-nucleon interactions transformed via the Unitary Correlation Operator Method (UCOM...
We present a calculation of the properties of vibrational states in deformed, axially-symmetric even...
A self-consistent quasiparticle random-phase approximation (QRPA) model that employs the canonical H...
A self-consistent quasiparticle random-phase approximation (QRPA) model that employs the canonical H...
Density functional theory is a preferred microscopic method for calculation of nuclear properties ov...
We develop a new framework of the deformed quasiparticle-random-phase approximation (QRPA) where the...
We discuss properties of the quadrupole collective excitation of the deformed neutron-rich nucleus $...
Fully consistent axially-symmetric-deformed quasiparticle random phase approximation calculations ha...
Modern nuclear ground-state density-functional theory (DFT) works best in heavy strongly deformed nu...
Based on the Hartree-Fock-Bogoliubov solutions in large deformed coordinate spaces, the finite ampli...
International audienceReliable predictions of the static and dynamic properties of a nucleus require...
Accurate assessment of the value of the incompressibility coefficient, K, of symmetric nuclear matte...
The incompressibility (compression modulus) K0 of infinite symmetric nuclear matter at saturation de...
Accurate assessment of the value of the incompressibility coefficient, K-infinity of symmetric nucle...
In order to explore the nature of collective modes in weakly bound nuclei, we have investigated surf...
Realistic nucleon-nucleon interactions transformed via the Unitary Correlation Operator Method (UCOM...