We study and compare two analytic models of graphene quantum dots for calculating charge relaxation times due to electron-phonon interaction. Recently, charge relaxation processes in graphene quantum dots have been probed experimentally and here we provide a theoretical estimate of relaxation times. By comparing a model with pure edge confinement to a model with electrostatic confinement, we find that the latter features much larger relaxation times. Interestingly, relaxation times in electrostatically defined quantum dots are predicted to exceed the experimentally observed lower bound of ∼100 ns
We study the electron momentum relaxation in single and vertically coupled quantum dots due to coupl...
On the basis of first-principles calculations and the special displacement method, we demonstrate th...
Electrostatically defined quantum dots in bilayer graphene offer a promising platform for spin qubit...
Graphene quantum dots are attractive candidates for solid-state quantum bits. In fact, the predicted...
Graphene quantum dots are attractive candidates for solid-state quantum bits. In fact, the predicted...
We present a theoretical analysis of the phonon-assisted relaxation in a system composed of two self...
We analyzed localized charge time evolution in the system of two interacting quantum dots (QD) (arti...
In this thesis we investigate the relaxation mechanisms that occur in quantum dots (QDs). First we c...
In this thesis we investigate the relaxation mechanisms that occur in quantum dots (QDs). First we c...
In this thesis we investigate the relaxation mechanisms that occur in quantum dots (QDs). First we c...
Graphene quantum devices, such as single electron transistors and quantum dots, have been a vital fi...
The dynamics of excited charge carriers, including phonon-induced relaxation of a charge to its grou...
We investigate phonon-induced spin and charge relaxation mediated by spin-orbit and hyperfine intera...
We perform a theoretical investigation on the two-phonon processes of the spin-flip and spin-conserv...
We study the electron momentum relaxation in single and vertically coupled quantum dots due to coupl...
We study the electron momentum relaxation in single and vertically coupled quantum dots due to coupl...
On the basis of first-principles calculations and the special displacement method, we demonstrate th...
Electrostatically defined quantum dots in bilayer graphene offer a promising platform for spin qubit...
Graphene quantum dots are attractive candidates for solid-state quantum bits. In fact, the predicted...
Graphene quantum dots are attractive candidates for solid-state quantum bits. In fact, the predicted...
We present a theoretical analysis of the phonon-assisted relaxation in a system composed of two self...
We analyzed localized charge time evolution in the system of two interacting quantum dots (QD) (arti...
In this thesis we investigate the relaxation mechanisms that occur in quantum dots (QDs). First we c...
In this thesis we investigate the relaxation mechanisms that occur in quantum dots (QDs). First we c...
In this thesis we investigate the relaxation mechanisms that occur in quantum dots (QDs). First we c...
Graphene quantum devices, such as single electron transistors and quantum dots, have been a vital fi...
The dynamics of excited charge carriers, including phonon-induced relaxation of a charge to its grou...
We investigate phonon-induced spin and charge relaxation mediated by spin-orbit and hyperfine intera...
We perform a theoretical investigation on the two-phonon processes of the spin-flip and spin-conserv...
We study the electron momentum relaxation in single and vertically coupled quantum dots due to coupl...
We study the electron momentum relaxation in single and vertically coupled quantum dots due to coupl...
On the basis of first-principles calculations and the special displacement method, we demonstrate th...
Electrostatically defined quantum dots in bilayer graphene offer a promising platform for spin qubit...