Multimode optomechanics to reach and evade displacement sensitivity limits
ORAL · Invited
Abstract
We will first present how optomechanical systems involving two aluminum drum resonators coupled to two on-chip microwave cavities can provide quantum-limited, phase-insensitive, directional microwave amplification adapted to displacement measurement in microwave-optomechanical systems. We will then show how the same systems can be used to reduce the fluctuations of one mechanical oscillator along the principle of a refrigerator, at the expense of exciting another oscillator. Finally, this system also allows to dynamically couple a pair non-commutating motional quadratures, which therefore make up an artificial oscillator. This proposes a measurement simultaneously evading backaction for these two quadratures, which is famously impossible for pairs commutating quantities. This technique, directly adapted to the detection of continuous variable entanglement, is used to verify the stabilized quantum entanglement of two drum resonators deeper than had been possible before for macroscopic mechanical oscillators.
*The work is supported by the European Union's Horizon 2020 research and innovation program under grant agreement No.~732894 (FETPRO HOT), by the European Research Council, and by the Academy of Finland.
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Publication: L. Mercier de Lépinay, C. F. Ockeloen-Korppi, D. Malz and M. A. Sillanpää, "Nonreciprocal Transport Based on Cavity Floquet Modes in Optomechanics", Physical Review Letters 125, 023603 (2020)
L. Mercier de Lépinay, C. F. Ockeloen-Korppi, D. Malz, C. Wanjura, M. Brunelli, A. Nunnenkamp, and M. A. Sillanpää, "Optomechanical nonreciprocal refrigerator near the quantum limit", in preparation
L. Mercier de Lépinay, C. F. Ockeloen-Korppi, M. J. Woolley, and M. A. Sillanpää, "Quantum mechanics-free subsystem with mechanical oscillators", Science 372, 625–629 (2021)
Presenters
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Laure Mercier de Lepinay
- Aalto University