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Superconducting Microwave Detector Technology for Ultra-Light Dark Matter Haloscopes and other Fundamental Physics Experiments: Background Theory (Part I)

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arxiv 2403.13554 v1 pith:DWUCDLFN submitted 2024-03-20 physics.ins-det hep-ex

classification physics.ins-dethep-ex
keywords detectordevelopmentdispersiveexperimentsfundamentalhaloscopeshomodynemicrowave
verification ladder T0 review T1 audit T2 compute T3 formal
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We consider how superconducting microwave detector technology might be applied to the readout of cavity-axion haloscopes and similar fundamental physics experiments. Expressions for the sensitivity of two detection schemes are derived: 1) a dispersive spectrometer, and 2) a direct-conversion/homodyne receiver using detectors as mixing elements. In both cases the semi-classical/Poisson-mixture approach is used to account for quantum effects. Preliminary sensitivity calculations are performed to guide future development work. These suggest the homodyne scheme offers a near-term solution for realising near-quantum-noise limited receivers with improved usability compared with parametric amplifiers. Similarly, they show that the dispersive spectrometer offers a potential way to beat the quantum noise limit, but that significant technological development work is needed to do so.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Superconducting NbN Resonator Parametric Amplifiers for Millimetre Wavelengths

    cond-mat.supr-con 2025-08 unverdicted novelty 5.0 of 10

    A niobium-nitride deposition process is reported to yield 10.5 K, ~1000 micro-ohm-cm films whose resonator parametric amplifiers give >20 dB gain at 25 GHz; the attached full text is an unrelated paper.

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