We study the relaxation of a single electron spin in a circular quantum dot in a transition-metal dichalcogenide monolayer defined by electrostatic gating. Transition-metal dichalcogenides provide an interesting and promising arena for quantum dot nano-structures due to the combination of a band gap, spin-valley physics and strong spin–orbit coupling. First we will discuss which bound state solutions in different B-field regimes can be used as the basis for qubits states. We find that at low B-fields combined spin-valley Kramers qubits to be suitable, while at large magnetic fields pure spin or valley qubits can be envisioned. Then we present a discussion of the relaxation of a single electron spin mediated by electron–phonon interaction vi...
Understanding and control of the spin relaxation time T-1 is among the key challenges for spinbased ...
We investigate phonon-induced spin and charge relaxation mediated by spin-orbit and hyperfine intera...
In this thesis we investigate the relaxation mechanisms that occur in quantum dots (QDs). First we c...
We derive an effective Hamiltonian that describes the dynamics of electrons in the conduction band o...
We derive an effective Hamiltonian that describes the dynamics of electrons in the conduction band o...
We study theoretically the electron-spin relaxation rate in quasi-one-dimensional coupled semiconduc...
Phonon-induced spin relaxation rates and electron g-factor tuning of quantum dots are studied as fun...
Phonon-induced spin relaxation rates and electron g-factor tuning of quantum dots are studied as fun...
We estimate the spin relaxation rate due to spin-orbit coupling and acoustic phonon scattering in we...
We estimate the spin relaxation rate due to spin-orbit coupling and acoustic phonon scattering in we...
Quantum dots, also known as artificial atoms, are created by tightly confining electrons, and thereb...
Quantum dots, also known as artificial atoms, are created by tightly confining electrons, and thereb...
Quantum dots, also known as artificial atoms, are created by tightly confining electrons, and thereb...
Single electron confined in a quantum dot is studied. A special emphasis is laid on the spin propert...
Understanding and control of the spin relaxation time T-1 is among the key challenges for spinbased ...
Understanding and control of the spin relaxation time T-1 is among the key challenges for spinbased ...
We investigate phonon-induced spin and charge relaxation mediated by spin-orbit and hyperfine intera...
In this thesis we investigate the relaxation mechanisms that occur in quantum dots (QDs). First we c...
We derive an effective Hamiltonian that describes the dynamics of electrons in the conduction band o...
We derive an effective Hamiltonian that describes the dynamics of electrons in the conduction band o...
We study theoretically the electron-spin relaxation rate in quasi-one-dimensional coupled semiconduc...
Phonon-induced spin relaxation rates and electron g-factor tuning of quantum dots are studied as fun...
Phonon-induced spin relaxation rates and electron g-factor tuning of quantum dots are studied as fun...
We estimate the spin relaxation rate due to spin-orbit coupling and acoustic phonon scattering in we...
We estimate the spin relaxation rate due to spin-orbit coupling and acoustic phonon scattering in we...
Quantum dots, also known as artificial atoms, are created by tightly confining electrons, and thereb...
Quantum dots, also known as artificial atoms, are created by tightly confining electrons, and thereb...
Quantum dots, also known as artificial atoms, are created by tightly confining electrons, and thereb...
Single electron confined in a quantum dot is studied. A special emphasis is laid on the spin propert...
Understanding and control of the spin relaxation time T-1 is among the key challenges for spinbased ...
Understanding and control of the spin relaxation time T-1 is among the key challenges for spinbased ...
We investigate phonon-induced spin and charge relaxation mediated by spin-orbit and hyperfine intera...
In this thesis we investigate the relaxation mechanisms that occur in quantum dots (QDs). First we c...