We study electronic structures of two-dimensional quantum dots in strong magnetic fields using mean-field density-functional theory and exact diagonalization. Our numerically accurate mean-field solutions show a reconstruction of the uniform-density electron droplet when the magnetic field flux quanta enter one by one the dot in stronger fields. These quanta correspond to repelling vortices forming polygonal clusters inside the dot. We find similar structures in the exact treatment of the problem by constructing a conditional operator for the analysis. We discuss important differences and limitations of the methods used.Peer reviewe
The ground states of parabolically confined electrons in a quantum dot are studied by both direct nu...
Quantum dots are nanoscale electronic objects, typically fabricated using two-dimensional semiconduc...
We predict the formation of giant vortices in quasi-two-dimensional quantum dots at high magnetic fi...
We study electronic structures of two-dimensional quantum dots in strong magnetic fields using mean-...
We study the stability and structure of vortices emerging in two-dimensional quantum dots in high ma...
We use density-functional methods to study the effects of an external magnetic field on two-dimensio...
We predict the formation of giant vortices in quasi-two-dimensional quantum dots at high magnetic fi...
URL:http://link.aps.org/doi/10.1103/PhysRevB.61.2729 DOI:10.1103/PhysRevB.61.2729Recent photoabsorp...
The influence of the direct and exchange Coulomb interaction on Landau level formation in strain ind...
We study the ground-state properties of rectangular quantum dots by using the spin-density-functiona...
We study the possible lowest energy states for spin-polarized electrons in a parabolic quantum dot i...
Laterally coupled quantum dot molecules are studied using exact diagonalization techniques. We exami...
This thesis investigates the use of wave-function methods for the study of quantum-dot systems. It i...
Quantum dots are man-made nanoscale structures. As they show typical atomic properties they are ofte...
The energy spectrum and local current patterns in graphene quantum dots are investigated for differe...
The ground states of parabolically confined electrons in a quantum dot are studied by both direct nu...
Quantum dots are nanoscale electronic objects, typically fabricated using two-dimensional semiconduc...
We predict the formation of giant vortices in quasi-two-dimensional quantum dots at high magnetic fi...
We study electronic structures of two-dimensional quantum dots in strong magnetic fields using mean-...
We study the stability and structure of vortices emerging in two-dimensional quantum dots in high ma...
We use density-functional methods to study the effects of an external magnetic field on two-dimensio...
We predict the formation of giant vortices in quasi-two-dimensional quantum dots at high magnetic fi...
URL:http://link.aps.org/doi/10.1103/PhysRevB.61.2729 DOI:10.1103/PhysRevB.61.2729Recent photoabsorp...
The influence of the direct and exchange Coulomb interaction on Landau level formation in strain ind...
We study the ground-state properties of rectangular quantum dots by using the spin-density-functiona...
We study the possible lowest energy states for spin-polarized electrons in a parabolic quantum dot i...
Laterally coupled quantum dot molecules are studied using exact diagonalization techniques. We exami...
This thesis investigates the use of wave-function methods for the study of quantum-dot systems. It i...
Quantum dots are man-made nanoscale structures. As they show typical atomic properties they are ofte...
The energy spectrum and local current patterns in graphene quantum dots are investigated for differe...
The ground states of parabolically confined electrons in a quantum dot are studied by both direct nu...
Quantum dots are nanoscale electronic objects, typically fabricated using two-dimensional semiconduc...
We predict the formation of giant vortices in quasi-two-dimensional quantum dots at high magnetic fi...