Optical Interferometric Readout of a Magnetically Levitated Superconducting Microsphere

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Hansen, J. J., Minniberger, S., Ilk, D., Asenbaum, P., Higgins, G., Povey, R. G., Schmidt, P., Hofer, J., Claessen, R., Aspelmeyer, M., Trupke, M.
Natura: Preprint
Pubblicazione: 2025
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866909738409656320
author Hansen, J. J.
Minniberger, S.
Ilk, D.
Asenbaum, P.
Higgins, G.
Povey, R. G.
Schmidt, P.
Hofer, J.
Claessen, R.
Aspelmeyer, M.
Trupke, M.
author_facet Hansen, J. J.
Minniberger, S.
Ilk, D.
Asenbaum, P.
Higgins, G.
Povey, R. G.
Schmidt, P.
Hofer, J.
Claessen, R.
Aspelmeyer, M.
Trupke, M.
contents We probe the motion of a 6 $μg$ magnetically levitated superconducting microsphere using optical interferometry at 3 K, achieving a resolution better than 1 $nm/ \sqrt{Hz}$, and use the measured signal to feedback-cool its motion. The resolution exceeds the shot-noise limit of 11 $pm/ \sqrt{Hz}$ primarily due to technical noise arising from the roughness of the particle. Combined with established techniques of cavity optomechanics, the high degree of isolation from environmental noise afforded by this platform provides a path to quantum physics experiments with cryogenic isolated masses at the microgram scale.
format Preprint
id arxiv_https___arxiv_org_abs_2508_11731
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Optical Interferometric Readout of a Magnetically Levitated Superconducting Microsphere
Hansen, J. J.
Minniberger, S.
Ilk, D.
Asenbaum, P.
Higgins, G.
Povey, R. G.
Schmidt, P.
Hofer, J.
Claessen, R.
Aspelmeyer, M.
Trupke, M.
Quantum Physics
We probe the motion of a 6 $μg$ magnetically levitated superconducting microsphere using optical interferometry at 3 K, achieving a resolution better than 1 $nm/ \sqrt{Hz}$, and use the measured signal to feedback-cool its motion. The resolution exceeds the shot-noise limit of 11 $pm/ \sqrt{Hz}$ primarily due to technical noise arising from the roughness of the particle. Combined with established techniques of cavity optomechanics, the high degree of isolation from environmental noise afforded by this platform provides a path to quantum physics experiments with cryogenic isolated masses at the microgram scale.
title Optical Interferometric Readout of a Magnetically Levitated Superconducting Microsphere
topic Quantum Physics
url https://arxiv.org/abs/2508.11731