Interfacing single photons and electrons is a crucial element in sharing quantum information between remote solid-state qubits. Semiconductor nanowires offer the unique possibility of combining optical quantum dots with avalanche photodiodes, thus enabling the conversion of an incoming single photon into a macroscopic current for efficient electrical detection. Currently, millions of excitation events are required to perform electrical readout of an exciton qubit state1, 6. Here, we demonstrate multiplication of carriers from only a single exciton generated in a quantum dot after tunnelling into a nanowire avalanche photodiode. Owing to the large amplification of both electrons and holes (>104), we reduce by four orders of magnitude the ...
Quantum photonic integrated circuits (QPICs) on a GaAs platform allow the generation, manipulation, ...
Quantum photonic integrated circuits (QPICs) on a GaAs platform allow the generation, manipulation, ...
Manipulation of carrier densities at the single electron level is inevitable in modern silicon based...
Interfacing single photons and electrons is a crucial element in sharing quantum information between...
We report recent progress toward on-chip single photon emission and detection in the near infrared u...
An important goal for nanoscale opto-electronics is the transfer of single electron spin states into...
Detecting single photons with high efficiency and timing resolution opens up new possibilities for v...
I ntegrating nanophotonics with electronics could enhance and/or enable opportunities in areas rangi...
Dispersive sensing is a powerful technique that enables scalable and high-fidelity readout of solid-...
One of the key challenges in developing quantum networks is to generate single photons with high bri...
We report InP nanowire photodetectors with a single InAsP quantum dot as light absorbing element. Wi...
We demonstrate that the resonant tunnel current through a double-barrier structure is sensitive to t...
Electron transfer to an individual quantum dot promotes the formation of charged excitons with enhan...
We present our recent progress in the development of semiconductor devices for photonic quantum info...
Quantum photonic integrated circuits (QPICs) on a GaAs platform allow the generation, manipulation, ...
Quantum photonic integrated circuits (QPICs) on a GaAs platform allow the generation, manipulation, ...
Manipulation of carrier densities at the single electron level is inevitable in modern silicon based...
Interfacing single photons and electrons is a crucial element in sharing quantum information between...
We report recent progress toward on-chip single photon emission and detection in the near infrared u...
An important goal for nanoscale opto-electronics is the transfer of single electron spin states into...
Detecting single photons with high efficiency and timing resolution opens up new possibilities for v...
I ntegrating nanophotonics with electronics could enhance and/or enable opportunities in areas rangi...
Dispersive sensing is a powerful technique that enables scalable and high-fidelity readout of solid-...
One of the key challenges in developing quantum networks is to generate single photons with high bri...
We report InP nanowire photodetectors with a single InAsP quantum dot as light absorbing element. Wi...
We demonstrate that the resonant tunnel current through a double-barrier structure is sensitive to t...
Electron transfer to an individual quantum dot promotes the formation of charged excitons with enhan...
We present our recent progress in the development of semiconductor devices for photonic quantum info...
Quantum photonic integrated circuits (QPICs) on a GaAs platform allow the generation, manipulation, ...
Quantum photonic integrated circuits (QPICs) on a GaAs platform allow the generation, manipulation, ...
Manipulation of carrier densities at the single electron level is inevitable in modern silicon based...