IEEE Solid-State Circuits Letters · 2018 · 40 citations · 13 references
EngineeringVlsi DesignComputer ArchitecturePhoton Detection ProbabilityIntegrated CircuitsV Excess BiasCircuit SystemPhotonic Integrated CircuitTex-math Notation=PhotonicsElectrical EngineeringComputer EngineeringQuenching CircuitMicroelectronicsPhotonic DeviceAfterpulsing EffectsCircuit DesignDigital Circuit DesignOptoelectronicsActive DiameterOptical Logic Gate
In this letter, we present a fully integrated single-photon avalanche diode (SPAD) using a fast cascoded quenching circuit (QC) fabricated in a 0.35-μm CMOS process. The QC features a fast active quenching time of only 0.48 ns and an adjustable total dead time (9.5-17 ns) to further reduce afterpulsing effects. To prove the quenching performance, the circuit was integrated together with a large-area SPAD having an active diameter of 80 μm. Experimental verification of reduction of afterpulsing with early quenching is shown. Thus, a minimal afterpulsing probability of 0.9% was measured at 6.6 V excess bias and a photon detection probability of 22% at a wavelength of 850 nm was achieved.
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Detecting single infrared photons with 93% system efficiency
Francesco Marsili, Varun B. Verma, J. A. Stern et al. · Nature Photonics · 2013 · 1.2K citations · Full text