We use fast coherent reflectivity measurements, in a strongly coupled quantum dot micropillar device, to monitor in real time single-charge jumps at the microsecond time scale. Thanks to the strong enhancement of light-matter interaction inside the cavity, and to a close to shot-noise-limited detection setup, the measurement rate is 5 orders of magnitude faster than with previous optical experiments of direct single-charge sensing with quantum dots. The monitored transitions, identified at any given time with a less than 0.2% error probability, correspond to a carrier being captured and then released by a single material defect. This high-speed technique opens the way for the real-time monitoring of other rapid single quantum events, such a...
We present switching experiments performed on pillar microcavities containing a collection of quantu...
Properly designed colloidal semiconductor quantum dots (QDs) have already been shown to exhibit high...
Dispersive sensing is a powerful technique that enables scalable and high-fidelity readout of solid-...
We report on ultrafast all-optical switching experiments performed on pillar microcavities containin...
International audienceWe review recent studies of cavity switching induced by the optical injection ...
We review recent studies of cavity switching induced by the optical injection of free carriers in mi...
We observe individual tunnel events of a single electron between a quantum dot and a reservoir, usin...
We observe individual tunnel events of a single electron between a quantum dot and a reservoir, usin...
We demonstrate fast readout of a double quantum dot (DQD) that is coupled to a superconducting reson...
The response of a single InGaAs quantum dot, embedded in a miniaturized charge-tunable device, to an...
In this thesis the results of experiments on the optical properties of single InGaAs quantum dots ar...
We present time integrated and time-resolved photoluminescence (PL) measurements on a single InAs/Ga...
International audienceWe present switching experiments performed on pillar microcavities containing ...
International audienceWe present switching experiments performed on pillar microcavities containing ...
We present time integrated and time-resolved photoluminescence (PL) measurements on a single InAs/Ga...
We present switching experiments performed on pillar microcavities containing a collection of quantu...
Properly designed colloidal semiconductor quantum dots (QDs) have already been shown to exhibit high...
Dispersive sensing is a powerful technique that enables scalable and high-fidelity readout of solid-...
We report on ultrafast all-optical switching experiments performed on pillar microcavities containin...
International audienceWe review recent studies of cavity switching induced by the optical injection ...
We review recent studies of cavity switching induced by the optical injection of free carriers in mi...
We observe individual tunnel events of a single electron between a quantum dot and a reservoir, usin...
We observe individual tunnel events of a single electron between a quantum dot and a reservoir, usin...
We demonstrate fast readout of a double quantum dot (DQD) that is coupled to a superconducting reson...
The response of a single InGaAs quantum dot, embedded in a miniaturized charge-tunable device, to an...
In this thesis the results of experiments on the optical properties of single InGaAs quantum dots ar...
We present time integrated and time-resolved photoluminescence (PL) measurements on a single InAs/Ga...
International audienceWe present switching experiments performed on pillar microcavities containing ...
International audienceWe present switching experiments performed on pillar microcavities containing ...
We present time integrated and time-resolved photoluminescence (PL) measurements on a single InAs/Ga...
We present switching experiments performed on pillar microcavities containing a collection of quantu...
Properly designed colloidal semiconductor quantum dots (QDs) have already been shown to exhibit high...
Dispersive sensing is a powerful technique that enables scalable and high-fidelity readout of solid-...