Feedback cooling of an insulating high-Q diamagnetically levitated plate

Author:

Tian S.1ORCID,Jadeja K.1ORCID,Kim D.1ORCID,Hodges A.1ORCID,Hermosa G. C.2ORCID,Cusicanqui C.3ORCID,Lecamwasam R.14ORCID,Downes J. E.5ORCID,Twamley J.1ORCID

Affiliation:

1. Quantum Machines Unit, Okinawa Institute of Science and Technology Graduate University 1 , Onna, Okinawa 904-0495, Japan

2. Department of Chemical Engineering and Materials Science, Yuan Ze University 2 , Chung-Li 32003, Taiwan

3. Tecnologico de Monterrey, Escuela de Ingenieria y Ciencias 3 , Monterrey 64849, Mexico

4. A*STAR Quantum Innovation Centre (Q.InC), Institute for Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR) 4 , 2 Fusionopolis Way, 08-03 Innovis 138634, Republic of Singapore

5. School of Mathematical and Physical Sciences, Macquarie University 5 , Sydney, NSW 2109, Australia

Abstract

Levitated systems in vacuum have many potential applications ranging from new types of inertial and magnetic sensors through to fundamental issues in quantum science, the generation of massive Schrödinger cats, and the connections between gravity and quantum physics. In this work, we demonstrate the passive, diamagnetic levitation of a centimeter-sized massive oscillator, which is fabricated using a method that ensures that the material, though highly diamagnetic, is an electrical insulator. Electrical conductors moving in a magnetic field experience eddy damping—which can severely reduce their motional quality factor. By chemically coating a powder of microscopic graphite beads with silica and embedding the coated powder in high-vacuum compatible wax, we form a centimeter-sized thin square plate which magnetically levitates over a checkerboard magnet array. The insulating coating reduces eddy damping by almost an order of magnitude compared to uncoated graphite with the same particle size. These plates exhibit a different equilibrium orientation from pyrolytic graphite due to their isotropic magnetic susceptibility. We measure the motional quality factor to be Q∼1.58×105 for an approximately centimeter-sized composite resonator with a mean particle size of 12 μm. Furthermore, we apply delayed feedback to cool the vertical motion of frequency ∼19  Hz and achieve center-of-mass temperature decrease by three orders of magnitude.

Publisher

AIP Publishing

Reference23 articles.

1. Real-time optimal quantum control of mechanical motion at room temperature;Nature,2021

2. Levitodynamics: Levitation and control of microscopic objects in vacuum;Science,2021

3. G. Winstone , M.Bhattacharya, A. A.Geraci, T.Li, P. J.Pauzauskie, and N.Vamivakas, “ Levitated optomechanics: A tutorial and perspective,” arXiv:2307.11858 (2023).

4. Searching for new physics using optically levitated sensors;Quantum Sci. Technol.,2021

5. Optical control and manipulation of diamagnetically levitated pyrolytic graphite;AIP Adv.,2019

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