Photonic circuits with photon subtraction and vacuum measurements can asymptotically invert thermal, displacement, and dephasing noise on bosonic codes, enabling error mitigation and suppression without nonlinear elements.
Ultrafast single-photon detection using nanophotonic parametric amplifiers
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Integrated photonic quantum information processing (QIP) has advanced rapidly due to progress in various nanophotonic platforms. Single photon detectors have been the subject of intense study due to their ubiquity in QIP systems, yet many state-of-the art detectors operate at cryogenic temperatures under vacuum and suffer from long dead times. We propose and demonstrate a single photon detection scheme based on optical parametric amplification in nanophotonic lithium niobate (LN) combined with a classical photodetector. We use quantum detector tomography and experimentally demonstrate an efficiency of 26.5% with a 2.2% dark count rate. We show that by improving the nonlinearity-to-loss ratio in nanophotonics and using homodyne detection on a squeezed pump, the detector can achieve 69% efficiency with 0.9% dark count rate. The detector operates at room temperature, has no intrinsic dead time, and is readily integrated in LN nanophotonics, in which many other components of photonic QIP are available. Our results represent a step towards all-optical ultrafast photon detection for scalable nanophotonic QIP.
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quant-ph 1years
2024 1verdicts
CONDITIONAL 1representative citing papers
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Linear-optical protocols for mitigating and suppressing noise in bosonic systems
Photonic circuits with photon subtraction and vacuum measurements can asymptotically invert thermal, displacement, and dephasing noise on bosonic codes, enabling error mitigation and suppression without nonlinear elements.