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Detection loss tolerant supersensitive phase measurement with an SU(1,1) interferometer

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arxiv 1705.02662 v2 pith:P6W7CPIB submitted 2017-05-07 quant-ph

classification quant-ph
keywords detectioninterferometerphasegainamplifierlossesparametricsecond
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In an unseeded SU(1,1) interferometer composed of two cascaded degenerate parametric amplifiers, with direct detection at the output, we demonstrate a phase sensitivity overcoming the shot noise limit by 2.3 dB. The interferometer is strongly unbalanced, with the parametric gain of the second amplifier exceeding the gain of the first one by a factor of 2, which makes the scheme extremely tolerant to detection losses. We show that by increasing the gain of the second amplifier, the phase supersensitivity of the interferometer can be preserved even with detection losses as high as 80%. This finding can considerably improve the state-of-the-art interferometry, enable sub-shot-noise phase sensitivity in spectral ranges with inefficient detection, and allow extension to quantum imaging.

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  1. Heralded Non-Gaussian Squeezed-State Inputs for Parity-Detection SU(1,1) Interferometry

    quant-ph 2026-08 conditional novelty 6.0 of 10

    Under fixed conditional-probe energy and fixed gain, optimized success-weighted photon subtraction, addition, and catalysis all give less Fisher information than the optimized Gaussian input in an SU(1,1) interferometer.

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