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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.
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1998
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2020
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2020
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2021
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C. W. Lewandowski, T. D. Knowles, Z. B. Etienne, and B. D’Urso, High-sensitivity accelerometry with a feedback-cooled magnetically levitated microsphere, Phys. Rev. Applied 15
2021
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2021
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2021
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2021
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T. W. Penny, A. Pontin, and P. F. Barker, Performance and limits of feedback cooling methods for levitated oscillators: A direct comparison, Phys. Rev. A 104
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M. G. Latorre, A. Paradkar, D. Hambraeus, G. Higgins, and W. Wieczorek, A chip-based superconducting magnetic trap for levitating superconducting microparticles, IEEE Transactions on Applied Superconductivity 32
2022
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2022
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J. Hofer et al., Data used in the article ”High-Q Magnetic Levitation and Control of Superconducting Microspheres at Millikelvin Temperatures”, Zenodo, 10.5281/zenodo.7837944 (2023)
2023
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