Collective dynamics in circuit optomechanical systems
ORAL
Abstract
Optomechanical systems are polyvalent platforms suited for controlling an extremely long-lived mechanical degree of freedom, realizing high-precision sensors, and benchmarking quantum mechanics at a macroscopic scale. Nevertheless, most of their implementation fails to harvest the advantages of multimode systems, mainly due to challenges in realizing reproducible mechanical and optical (microwave) resonances. Here, we investigate multiple nearly degenerate mechanical oscillators optomechanically coupled to a shared microwave cavity, implemented by superconducting mechanically compliant vacuum gap capacitors shunted by spiral inductors. We show that the mechanical resonators undergo a transition from individual to collective dynamics as their optomechanical interactions are enhanced. We finally study the sideband collective cooling of multimode mechanical systems, where one collective mechanical mode is efficiently cooled down while the individual modes remain the large phonon occupations.
*This work has received funding from the European Research Council (ERC) under the EU H2020 research and innovation programme, grant agreement No. 835329 (ExCOM-cCEO), NCCR QSIT, a National Centre of Competence (or Excellence) in Research, funded by the Swiss National Science Foundation (grant number 51NF40-185902), Marie Sklodowska-Curie IF grant agreement No. 101033361. All samples were fabricated and grown in the Center of MicroNanoTechnology (CMi) at EPFL.
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Presenters
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Marco Scigliuzzo
- EPFL
- Ecole Polytechnique Federale de Lausanne
- Ecole Polytechnique Federale de Lausanne (EPFL)
- Ecole Polytechnique Fédérale de Lausanne