- Conference Article
- 10.1117/12.3059863
Electrical testing of SNSPD-SFQ two-photon coincidence correlator
- Jun 06, 2025
- Roman Sobolewski + 9 more +9
Publications from 2021 to 2026
Showing 10 of 16 papers
Electrical testing of SNSPD-SFQ two-photon coincidence correlator
Control of a Josephson Digital Phase Detector via an SFQ-Based Flux Bias Driver
Quantum computation requires high-fidelity qubit readout, preserving the quantum state. In the case of superconducting (SC) qubits, readout is typically performed using a complex analog experimental setup operated at room temperature, which poses significant technological and economic barriers to large system scalability. An alternative approach is to perform a cryogenic on-chip qubit readout based on a Josephson Digital Phase Detector (JDPD): a flux switchable device capable of digitizing the phase sign of a coherent input. The readout operation includes the flux excitation of the JDPD to evolve from a single to a double-minima potential. In this work, the effect of the flux bias characteristics on the JDPD performances is studied numerically. To meet the identified requirements that maximize detection fidelity and tackle the engineering challenges, a cryogenic on-chip Single Flux Quantum based flux bias driver is proposed and discussed.
Read moreQuasiparticle Dynamics in Niobium Nitride Superconducting Microwave Resonators at Single-Photon Regime
Reliable operation of superconducting quantum circuits demands effective control over quasiparticles, which introduce energy distributions below the superconducting gap and act as a dominant source of decoherence. Here, we investigate the impact of quasiparticle dynamics on niobium nitride (NbN) microwave coplanar waveguide resonators on silicon chips. By performing sub-Kelvin measurements of resonance frequency and internal quality factor across temperature sweeps, we find links between quasiparticle energy and superconducting circuit performance. Calculations of the complex conductivity of the NbN film reveal the quantitative role of quasiparticle density in experimental results. These findings deepen understanding of quasiparticle-induced losses, paving the way toward engineering more resilient superconducting resonators, with broad implications for scalable and fault-tolerant quantum computing architectures.
Read moreDesign of integrated SSPD-SFQ two-photon coincidence correlator
We present a single-flux-quantum (SFQ) based digital correlator to trace independent signals from two superconducting single-photon detectors (SSPDs) triggering its inputs. In our design two SSPDs are magnetically coupled to inputs of a readout system where direct current (DC)-to-SFQ converters are used to convert transient SSPD output pulses, triggered by detection of single-photon events, to SFQ pulses. The coincidence verification of SFQ pulses, generated by the two DC-to-SFQ converters, is performed with a modified SFQ coincidence buffer. The coincidence buffer is designed to generate an SFQ output pulse only when its both inputs are triggered simultaneously, or within a preset margin time. The output of the coincidence buffer is connected via, this time, an SFQ-to-DC converter, to a pulse counter operated at room temperature. We performed extensive simulations of both the SSPD equivalent circuit and correlator redout elements for the proposed coincidence scheme, using a WRSpice and PSCAN2 simulation platforms that are specifically designated to model Josephson junctions and widely used to simulate operation of the SFQ circuitry. In particular, we investigated our coincidence correlator scheme for measurements of the second-order correlation function, used to demonstrate the antibunching effect in the single-photon detection of non-classical light.
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