We employ a self-consistent, dynamic spin-density functional concept beyond the dipole approximation in order to calculate the collective modes of few-electron quantum dots with partial spin polarization. Because of Hund's rule in a magnetic field the mode energies exhibit characteristic discontinuities in their magnetic-field dependence, which is a manifestation of ground-state transitions between different spin configurations. A finite ground-state spin density couples collective charge- and spin-density excitations. We predict their observability in state-of-the-art Raman experiments
From our theoretical studies of resonant Raman transitions in two-electron quantum dots (artificial ...
Low-lying collective excitations above highly correlated ground states of few interacting electrons ...
Using quantum dot artificial atoms as a simple toy model, we reflect on the question of whether spin...
We employ a self-consistent, dynamic spin-density functional concept beyond the dipole approximation...
Electronic Raman scattering provides information on excited states, whose collective character as be...
In this article we review our recent experimental and theoretical investigations of electronic excit...
The spin response function for electrons confined in a quantum dot is studied within the time-depend...
We probe the electronic shell structure of quasiatomic systems, realized in GaAs-AlGaAs quantum dots...
We review recent magneto-Raman experiments on electronic excitations in GaAs–AlGaAs quantum wires an...
The longitudinal dipole response of a quantum dot has been calculated in the far-infrared regime usi...
We have employed time-dependent local-spin density-functional theory to analyze the multipole spin a...
The resonant inelastic light scattering from a GaAs quantum dot containing a few electrons is invest...
We calculate the dynamical structure factor S(Q,\u3c9) for correlated electrons in quantum dots in a...
The Raman spectra of quantum wires in the region of electronic intra-band excitations are investiga...
Using quantum dot artificial atoms as a simple toy model, we reflect on the question of whether spin...
From our theoretical studies of resonant Raman transitions in two-electron quantum dots (artificial ...
Low-lying collective excitations above highly correlated ground states of few interacting electrons ...
Using quantum dot artificial atoms as a simple toy model, we reflect on the question of whether spin...
We employ a self-consistent, dynamic spin-density functional concept beyond the dipole approximation...
Electronic Raman scattering provides information on excited states, whose collective character as be...
In this article we review our recent experimental and theoretical investigations of electronic excit...
The spin response function for electrons confined in a quantum dot is studied within the time-depend...
We probe the electronic shell structure of quasiatomic systems, realized in GaAs-AlGaAs quantum dots...
We review recent magneto-Raman experiments on electronic excitations in GaAs–AlGaAs quantum wires an...
The longitudinal dipole response of a quantum dot has been calculated in the far-infrared regime usi...
We have employed time-dependent local-spin density-functional theory to analyze the multipole spin a...
The resonant inelastic light scattering from a GaAs quantum dot containing a few electrons is invest...
We calculate the dynamical structure factor S(Q,\u3c9) for correlated electrons in quantum dots in a...
The Raman spectra of quantum wires in the region of electronic intra-band excitations are investiga...
Using quantum dot artificial atoms as a simple toy model, we reflect on the question of whether spin...
From our theoretical studies of resonant Raman transitions in two-electron quantum dots (artificial ...
Low-lying collective excitations above highly correlated ground states of few interacting electrons ...
Using quantum dot artificial atoms as a simple toy model, we reflect on the question of whether spin...