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A cavity entanglement and state swapping method to accelerate the search for axion dark matter

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arxiv 2107.04147 v2 pith:LQBEZSIY submitted 2021-07-08 quant-ph hep-ph

A cavity entanglement and state swapping method to accelerate the search for axion dark matter

classification quant-ph hep-ph
keywords axionratescannoisesearchcavitycircuitdark
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In cavity-based axion dark matter detectors, quantum noise remains a primary barrier to achieving the scan rate necessary for a comprehensive search of axion parameter space. Here we introduce a method of scan rate enhancement in which an axion-sensitive cavity is coupled to an auxiliary resonant circuit through simultaneous two-mode squeezing (entangling) and state swapping interactions. We show analytically that when combined, these interactions can amplify an axion signal before it becomes polluted by vacuum noise introduced by measurement. This internal amplification yields a wider bandwidth of axion sensitivity, increasing the rate at which the detector can search through frequency space. With interaction rates predicted by circuit simulations of this system, we show that this technique can increase the scan rate up to 15-fold relative to the scan rate of a detector limited by vacuum noise.

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Cited by 1 Pith paper

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    A 9-cell microwave cavity's 18 modes can act as a synthetic detector array that reconstructs the direction, polarization, and chirp of a high-frequency gravitational-wave signal.