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Quantum-enhanced sensing of axion dark matter with a transmon-based single microwave photon counter
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Quantum-enhanced sensing of axion dark matter with a transmon-based single microwave photon counter
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We report an axion dark matter search with a haloscope equipped with a microwave photon counter. The haloscope is a tunable high quality factor 3-dimensional microwave cavity placed in a magnetic field. The photon counter, operated cyclically, maps an incoming microwave photon onto the state of a superconducting transmon qubit. The measurement protocol continuously monitors the power emitted by the haloscope cavity as well as the dark count background, and enables tuning of the cavity frequency to probe different axion masses. With this apparatus we enhance by a factor 20 the search speed that can be reached with quantum-limited linear amplifiers, and set a new standard for probing the existence of axions with resonant detectors.
Forward citations
Cited by 2 Pith papers
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New quantum information perspectives in the axion--photon and neutrino systems
Axion-photon oscillations generate bipartite mode entanglement with maximal values at resonance, and quantum speed limits are derived for both axion-photon and neutrino systems.
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Enhancing the sensitivity of single microwave photon detection with bandwidth tunability
Transmon qubit microwave photon counter with bandwidth tuning achieves 3e-23 W/sqrt(Hz) sensitivity, confirmed by single spin fluorescence measurement.
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