Quantum microscopy requires efficient detectors able to identify temporal correlations among photons. Photon coincidences are usually detected by postprocessing their timestamps measured by means of time-To-digital converters (TDCs), through a time and power-consuming procedure, which impairs the overall system performance. In this article, we propose an innovative single-photon sensitive imager based on single-photon avalanche diodes (SPADs), able to signal coincident photon pairs along with their position through a TDC-free, event-driven architecture. The result is a highly efficient detector (25.8%) with a 100% duty cycle and minimized data throughput. The modular architecture and the 330 ns readout time, independent of pixel number, pav...
Classical light sources emit a randomly-timed stream of individual photons, the spatial distribution...
Single-photon avalanche diode (SPAD) arrays are essential tools in biophotonics, optical ranging and...
In this paper, a 100x100 CMOS Single Photon Avalanche Diode (SPAD) array designed for quantum imagin...
MOS SPAD imagers are potentially good candidates for detection of entangled photons in Quantum Imagi...
Single photon avalanche diode arrays can provide both the spatial and temporal information of each d...
Quantum imaging uses entangled photons to overcome the limits of a classical-light apparatus in term...
Microscopy resolution below the diffraction limit can be achieved by exploiting quantum light proper...
Spatial correlations between two photons are the key resource in realising many quantum imaging sche...
Quantum technology promises improvements in imaging, computing, and communication, for example using...
This article reports the design and characterization of a 32 × 32 single-photon avalanche diode (SPA...
This article reports the design and characterization of a 32 × 32 single-photon avalanche diode (SPA...
The ability to generate and handle quantum correlations in twin-beam states is the foundation to ove...
We present the design and simulations of a single-photon sensitive imager based on single photon ava...
Classical light sources emit a randomly-timed stream of individual photons, the spatial distribution...
Single-photon avalanche diode (SPAD) arrays are essential tools in biophotonics, optical ranging and...
In this paper, a 100x100 CMOS Single Photon Avalanche Diode (SPAD) array designed for quantum imagin...
MOS SPAD imagers are potentially good candidates for detection of entangled photons in Quantum Imagi...
Single photon avalanche diode arrays can provide both the spatial and temporal information of each d...
Quantum imaging uses entangled photons to overcome the limits of a classical-light apparatus in term...
Microscopy resolution below the diffraction limit can be achieved by exploiting quantum light proper...
Spatial correlations between two photons are the key resource in realising many quantum imaging sche...
Quantum technology promises improvements in imaging, computing, and communication, for example using...
This article reports the design and characterization of a 32 × 32 single-photon avalanche diode (SPA...
This article reports the design and characterization of a 32 × 32 single-photon avalanche diode (SPA...
The ability to generate and handle quantum correlations in twin-beam states is the foundation to ove...
We present the design and simulations of a single-photon sensitive imager based on single photon ava...
Classical light sources emit a randomly-timed stream of individual photons, the spatial distribution...
Single-photon avalanche diode (SPAD) arrays are essential tools in biophotonics, optical ranging and...
In this paper, a 100x100 CMOS Single Photon Avalanche Diode (SPAD) array designed for quantum imagin...