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On-chip, photon-number-resolving, telecom-band detectors for scalable photonic information processing

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arxiv 1107.5557 v1 pith:XRBHRB7Q submitted 2011-07-27 quant-ph physics.optics

classification quant-phphysics.optics
keywords detectiondetectordevicesfeasibleon-chipphotonicprocessingroute
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Integration is currently the only feasible route towards scalable photonic quantum processing devices that are sufficiently complex to be genuinely useful in computing, metrology, and simulation. Embedded on-chip detection will be critical to such devices. We demonstrate an integrated photon-number resolving detector, operating in the telecom band at 1550 nm, employing an evanescently coupled design that allows it to be placed at arbitrary locations within a planar circuit. Up to 5 photons are resolved in the guided optical mode via absorption from the evanescent field into a tungsten transition-edge sensor. The detection efficiency is 7.2 \pm 0.5 %. The polarization sensitivity of the detector is also demonstrated. Detailed modeling of device designs shows a clear and feasible route to reaching high detection efficiencies.

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  1. First direct search for light dark matter interactions in a transition-edge sensor

    physics.ins-det 2025-06 conditional novelty 4.0 of 10

    A 489-hour run of a tungsten transition-edge sensor, used as both target and readout, sets first-generation limits on sub-MeV dark matter scattering with electrons and nucleons and on dark photon absorption.

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