We consider a single electron in a 1D quantum dot with a static slanting Zeeman field. By combining the spin and orbital degrees of freedom of the electron, an effective quantum two-level (qubit) system is defined. This pseudospin can be coherently manipulated by the voltage applied to the gate electrodes, without the need for an external time-dependent magnetic field or spin-orbit coupling. Single-qubit rotations and the controlled-NOT operation can be realized. We estimated the relaxation (T1) and coherence (T2) times and the (tunable) quality factor. This scheme implies important experimental advantages for single electron spin control
This thesis describes a series of experiments aimed at understanding and controlling the behavior of...
The influence of a resonant oscillating electromagnetic field on a single electron in coupled latera...
We use gate voltage control of the exchange interaction to prepare, manipulate, and measure two-elec...
We consider a single electron in a 1D quantum dot with a static slanting Zeeman field. By combining ...
An electron does not only have an electric charge, but also a small magnetic moment, called spin. In...
Single electron confined in a quantum dot is studied. A special emphasis is laid on the spin propert...
We have studied theoretically the possibility of ultra-fast manipulation of a single electron spin i...
We use quantum optimal control theory algorithms to design external electric fields that drive the c...
Single spins in the solid state offer a unique opportunity to store and manipulate quantum informati...
An electron, in addition to its electric charge, possesses a small magnetic moment, called spin. The...
We demonstrated coherent control of a quantum two-level system based on two-electron spin states in ...
This thesis describes a series of experiments aimed at understanding and controlling single electron...
Single spins in the solid state offer a unique opportunity to store and manipulate quantum informati...
We demonstrated coherent control of a quantum two-level system based on two-electron spin states in ...
Rapid coherent control of electron spin states is required for implementation of a spin-based quantu...
This thesis describes a series of experiments aimed at understanding and controlling the behavior of...
The influence of a resonant oscillating electromagnetic field on a single electron in coupled latera...
We use gate voltage control of the exchange interaction to prepare, manipulate, and measure two-elec...
We consider a single electron in a 1D quantum dot with a static slanting Zeeman field. By combining ...
An electron does not only have an electric charge, but also a small magnetic moment, called spin. In...
Single electron confined in a quantum dot is studied. A special emphasis is laid on the spin propert...
We have studied theoretically the possibility of ultra-fast manipulation of a single electron spin i...
We use quantum optimal control theory algorithms to design external electric fields that drive the c...
Single spins in the solid state offer a unique opportunity to store and manipulate quantum informati...
An electron, in addition to its electric charge, possesses a small magnetic moment, called spin. The...
We demonstrated coherent control of a quantum two-level system based on two-electron spin states in ...
This thesis describes a series of experiments aimed at understanding and controlling single electron...
Single spins in the solid state offer a unique opportunity to store and manipulate quantum informati...
We demonstrated coherent control of a quantum two-level system based on two-electron spin states in ...
Rapid coherent control of electron spin states is required for implementation of a spin-based quantu...
This thesis describes a series of experiments aimed at understanding and controlling the behavior of...
The influence of a resonant oscillating electromagnetic field on a single electron in coupled latera...
We use gate voltage control of the exchange interaction to prepare, manipulate, and measure two-elec...