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High-Q magnetic levitation and control of superconducting microspheres at millikelvin temperatures

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arxiv 2211.06289 v2 pith:FQBLQ3ID submitted 2022-11-11 quant-ph

High-Q magnetic levitation and control of superconducting microspheres at millikelvin temperatures

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keywords magneticmassspheresuperconductingadjustablecontrolfrequencieshertz
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We report the levitation of a superconducting lead-tin sphere with 100 micrometer diameter (corresponding to a mass of 5.6 micrograms) in a static magnetic trap formed by two coils in an anti-Helmholtz configuration, with adjustable resonance frequencies up to 240 hertz. The center-of-mass motion of the sphere is monitored magnetically using a dc superconducting quantum interference device as well as optically and exhibits quality factors of up to 2.6e7. We also demonstrate 3D magnetic feedback control of the sphere's motion. The setup is housed in a dilution refrigerator operating at 15 millikelvin. By implementing a cryogenic vibration isolation system we can attenuate environmental vibrations at 200 hertz by approximately seven orders of magnitude. The combination of low temperature, large mass and high quality factor as well as adjustable resonance frequencies provides a promising platform for testing quantum physics in previously unexplored regimes with high mass and long coherence times.

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Cited by 2 Pith papers

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

  1. Momentum Diffusion, Decoherence and Drag Force on a Magnetic Nanoparticle

    quant-ph 2026-02 conditional novelty 6.0

    The magnetic (diamagnetic) contribution to momentum diffusion, decoherence, and thermal drag of a levitated nanoparticle is derived and shown to be several orders of magnitude smaller than the dielectric contribution.

  2. Towards the Direct Detection of Composite Ultraheavy Dark Matter in Quantum Sensor Arrays

    hep-ph 2025-12 accept novelty 6.0

    A quantum sensor array could be sensitive to Planck-mass composite dark matter with radii around a centimeter via Yukawa forces, with a signal that scales as λ² instead of exponentially for short screening lengths.