A fully consistent relativistic continuum random phase approximation (RCRPA) is constructed, where the contribution of the continuum spectrum to nuclear excitations is treated exactly by the single-particle Green's function technique. The full consistency of the calculations is achieved that the same effective Lagrangian is adopted for the ground state and the excited states. The negative energy states in the Dirac sea are also included in the single-particle Green's function in the no-sea approximation. The currents from the vector meson and photon exchanges and the Coulomb interaction in RCRPA are treated exactly. The spin-orbit interaction is included naturally in the relativistic frame. Numerical results of the RCRPA are checked with th...
We present a theoretical formulation for the description of nuclear excitations within the framework...
The self-consistent relativistic random-phase approximation (RPA) in the radial coordinate represent...
The proton-neutron relativistic quasiparticle random phase approximation (PN-RQRPA) is formulated in...
A fully consistent relativistic continuum random phase approximation (RCRPA) is constructed in terms...
The self-consistent quasiparticle random-phase approximation (QRPA) approach is formulated in the ca...
The consistency condition is tested within the particle-particle random-phase approximation (RPA), r...
Relativistic Random Phase Approximation (RRPA) is used to describe collective ex-citation in normal ...
The matrix equations of the random-phase approximation (RPA) are derived for the point-coupling Lagr...
The relativistic quasiparticle random phase approximation (RQRPA) is formulated in the canonical sin...
The matrix equations of the relativistic random-phase approximation (RRPA) are derived for an effect...
The relativistic quasiparticle random phase approximation (RQRPA) is formulated in the canonical sin...
The relativistic quasiparticle random phase approximation (RQRPA) is formulated in the canonical sin...
The matrix equations of the relativistic random-phase approximation (RRPA) are derived for an effect...
The Relativistic Random Phase Approximation (RRPA) is derived from the Time-dependent Relativistic M...
The matrix equations of the random-phase approximation (RPA) are derived for the point-coupling Lagr...
We present a theoretical formulation for the description of nuclear excitations within the framework...
The self-consistent relativistic random-phase approximation (RPA) in the radial coordinate represent...
The proton-neutron relativistic quasiparticle random phase approximation (PN-RQRPA) is formulated in...
A fully consistent relativistic continuum random phase approximation (RCRPA) is constructed in terms...
The self-consistent quasiparticle random-phase approximation (QRPA) approach is formulated in the ca...
The consistency condition is tested within the particle-particle random-phase approximation (RPA), r...
Relativistic Random Phase Approximation (RRPA) is used to describe collective ex-citation in normal ...
The matrix equations of the random-phase approximation (RPA) are derived for the point-coupling Lagr...
The relativistic quasiparticle random phase approximation (RQRPA) is formulated in the canonical sin...
The matrix equations of the relativistic random-phase approximation (RRPA) are derived for an effect...
The relativistic quasiparticle random phase approximation (RQRPA) is formulated in the canonical sin...
The relativistic quasiparticle random phase approximation (RQRPA) is formulated in the canonical sin...
The matrix equations of the relativistic random-phase approximation (RRPA) are derived for an effect...
The Relativistic Random Phase Approximation (RRPA) is derived from the Time-dependent Relativistic M...
The matrix equations of the random-phase approximation (RPA) are derived for the point-coupling Lagr...
We present a theoretical formulation for the description of nuclear excitations within the framework...
The self-consistent relativistic random-phase approximation (RPA) in the radial coordinate represent...
The proton-neutron relativistic quasiparticle random phase approximation (PN-RQRPA) is formulated in...