We use a pulse of surface acoustic waves (SAWs) to control the electron population and depopulation of a quantum dot. The barriers between the dot and reservoirs are set high to isolate the dot. Within a time scale of similar to 100 s the dot can be set to a nonequilibrium charge state, where an empty (occupied) level stays below (above) the Fermi energy. A pulse containing a fixed number of SAW periods is sent through the dot, controllably changing the potential, and hence the tunneling probability, to add (remove) an electron to (from) the dot
Self-assembled semiconductor quantum dots confine single carriers on the nanometer-scale. For the co...
Surface acoustic waves (SAWs) strongly modulate the shallow electric potential in piezoelectric mate...
International audienceWe demonstrate the control with a dc-voltage of the environment-induced decohe...
Gallium arsenide is piezoelectric, so it is possible to generate coupled mechanical and electrical s...
We measure the electron escape rate from surface-acoustic-wave dynamic quantum dots (QDs) through a ...
We discuss the effects of gigahertz photon irradiation on a degenerately phosphorus-doped silicon qu...
Although extensive research on nanostructures has led to the discovery of a number of efficient ways...
Using a non-invasive charge detection method, we detect a flow of electrons trapped in dynamic quant...
International audienceWe demonstrate systematic resonance fluorescence recovery with near-unity emis...
The synthesis of single-cycle, compressed optical and microwave pulses sparked novel areas of fundam...
A surface acoustic wave (SAW) can produce a moving potential wave that can trap and drag electrons a...
Efforts are made in this thesis to reveal the dynamics of single-electron tunneling and to realize q...
International audienceWe study the injection mechanism of a single electron from a static quantum do...
In the last 25 years there were several reports on quantum-optics-like experiments that were perform...
Observation of coherent single-electron dynamics is severely limited by experimental bandwidth. We p...
Self-assembled semiconductor quantum dots confine single carriers on the nanometer-scale. For the co...
Surface acoustic waves (SAWs) strongly modulate the shallow electric potential in piezoelectric mate...
International audienceWe demonstrate the control with a dc-voltage of the environment-induced decohe...
Gallium arsenide is piezoelectric, so it is possible to generate coupled mechanical and electrical s...
We measure the electron escape rate from surface-acoustic-wave dynamic quantum dots (QDs) through a ...
We discuss the effects of gigahertz photon irradiation on a degenerately phosphorus-doped silicon qu...
Although extensive research on nanostructures has led to the discovery of a number of efficient ways...
Using a non-invasive charge detection method, we detect a flow of electrons trapped in dynamic quant...
International audienceWe demonstrate systematic resonance fluorescence recovery with near-unity emis...
The synthesis of single-cycle, compressed optical and microwave pulses sparked novel areas of fundam...
A surface acoustic wave (SAW) can produce a moving potential wave that can trap and drag electrons a...
Efforts are made in this thesis to reveal the dynamics of single-electron tunneling and to realize q...
International audienceWe study the injection mechanism of a single electron from a static quantum do...
In the last 25 years there were several reports on quantum-optics-like experiments that were perform...
Observation of coherent single-electron dynamics is severely limited by experimental bandwidth. We p...
Self-assembled semiconductor quantum dots confine single carriers on the nanometer-scale. For the co...
Surface acoustic waves (SAWs) strongly modulate the shallow electric potential in piezoelectric mate...
International audienceWe demonstrate the control with a dc-voltage of the environment-induced decohe...