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Detecting itinerant microwave photons with engineered non-linear dissipation

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abstract

Single photon detection is a key resource for sensing at the quantum limit and the enabling technology for measurement based quantum computing. Photon detection at optical frequencies relies on irreversible photo-assisted ionization of various natural materials. However, microwave photons have energies 5 orders of magnitude lower than optical photons, and are therefore ineffective at triggering measurable phenomena at macroscopic scales. Here, we report the observation of a new type of interaction between a single two level system (qubit) and a microwave resonator. These two quantum systems do not interact coherently, instead, they share a common dissipative mechanism to a cold bath: the qubit irreversibly switches to its excited state if and only if a photon enters the resonator. We have used this highly correlated dissipation mechanism to detect itinerant photons impinging on the resonator. This scheme does not require any prior knowledge of the photon waveform nor its arrival time, and dominant decoherence mechanisms do not trigger spurious detection events (dark counts). We demonstrate a detection efficiency of 58% and a record low dark count rate of 1.4 per ms. This work establishes engineered non-linear dissipation as a key-enabling resource for a new class of low-noise non-linear microwave detectors.

fields

quant-ph 1

years

2019 1

verdicts

ACCEPT 1

representative citing papers

Microwave quantum illumination using a digital receiver

quant-ph · 2019-08-08 · accept · novelty 6.0

Microwave quantum illumination with a Josephson parametric converter and a digital phase-conjugate receiver detects a room-temperature target at 1 meter and, under simulated perfect idler photon counting, shows up to 4 dB advantage over classical benchmarks.

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  • Microwave quantum illumination using a digital receiver quant-ph · 2019-08-08 · accept · none · ref 39 · internal anchor

    Microwave quantum illumination with a Josephson parametric converter and a digital phase-conjugate receiver detects a room-temperature target at 1 meter and, under simulated perfect idler photon counting, shows up to 4 dB advantage over classical benchmarks.