We study a two-electron quantum dot molecule in a magnetic field by the direct diagonalization of the Hamiltonian matrix. The ground states of the molecule with the total spin S=0 and S=1 provide a possible realization for a qubit of a quantum computer. Switching between the states is best achieved by changing the magnetic field. Based on an analysis of the wave function, we show that the system consists of composite particles formed by an electron and flux quanta attached to it. This picture can also be used to explain the spin phase diagram.Peer reviewe
We use the entanglement measure to study the evolution of quantum correlations in two-electron axial...
We study electron molecules in realistic vertically coupled quantum dots in a strong magnetic field....
An electron does not only have an electric charge, but also a small magnetic moment, called spin. In...
We study a two-electron quantum dot molecule in a magnetic field by the direct diagonalization of th...
Laterally coupled quantum dot molecules are studied using exact diagonalization techniques. We exami...
Semiconductor quantum dots have been studied for nearly two decades with a variety of experimental a...
We have studied a two-electron quantum dot molecule in a magnetic field. The electron interaction is...
We investigate the stability of few-electron quantum phases in vertically coupled quantum dots under...
We study the magnetic field induced singlet/triplet transition for two electrons in vertically-coupl...
We investigate the phase diagram of realistic vertically coupled quantum dots under a magnetic field...
Electron correlations in a two-electron two-dimensional ‘artificial atom’ or quantum dot (with harmo...
International audienceQuantum criticality is the intriguing possibility offered by the laws of quant...
We perform Hartree-Fock calculations to show that quantum dots (i.e., two-dimensional systems of up ...
In semiconductor quantum dots, the motion of the electrons is restricted to a finite region of a two...
In this Thesis, I present a theoretical study of correlation effects in strongly interacting electro...
We use the entanglement measure to study the evolution of quantum correlations in two-electron axial...
We study electron molecules in realistic vertically coupled quantum dots in a strong magnetic field....
An electron does not only have an electric charge, but also a small magnetic moment, called spin. In...
We study a two-electron quantum dot molecule in a magnetic field by the direct diagonalization of th...
Laterally coupled quantum dot molecules are studied using exact diagonalization techniques. We exami...
Semiconductor quantum dots have been studied for nearly two decades with a variety of experimental a...
We have studied a two-electron quantum dot molecule in a magnetic field. The electron interaction is...
We investigate the stability of few-electron quantum phases in vertically coupled quantum dots under...
We study the magnetic field induced singlet/triplet transition for two electrons in vertically-coupl...
We investigate the phase diagram of realistic vertically coupled quantum dots under a magnetic field...
Electron correlations in a two-electron two-dimensional ‘artificial atom’ or quantum dot (with harmo...
International audienceQuantum criticality is the intriguing possibility offered by the laws of quant...
We perform Hartree-Fock calculations to show that quantum dots (i.e., two-dimensional systems of up ...
In semiconductor quantum dots, the motion of the electrons is restricted to a finite region of a two...
In this Thesis, I present a theoretical study of correlation effects in strongly interacting electro...
We use the entanglement measure to study the evolution of quantum correlations in two-electron axial...
We study electron molecules in realistic vertically coupled quantum dots in a strong magnetic field....
An electron does not only have an electric charge, but also a small magnetic moment, called spin. In...