Realization of an all-optical effective negative-mass oscillator for coherent quantum noise cancellation
Nived Johny, Jonas Junker, Bernd Schulte, Dennis Wilken, Klemens Hammerer, and Mich\`ele Heurs

TL;DR
This paper demonstrates an all-optical effective-negative-mass oscillator that achieves broadband quantum noise cancellation, advancing quantum measurement and communication technologies through a novel, tunable, and compact system.
Contribution
The authors realize an all-optical ENMO capable of broadband quantum noise cancellation, introducing an in-situ characterization method for complex quantum optical systems.
Findings
Achieved 3.6 dB quantum noise reduction at optimal frequency.
Demonstrated a tunable, wavelength-flexible, and compact CQNC system.
Projected 77% reduction in quantum back-action noise.
Abstract
We report the realization of an all-optical, tabletop effective-negative-mass oscillator (ENMO) scheme capable of canceling quantum noise when cascaded with an opto-mechanical sensor susceptible to (quantum) radiation pressure noise. Our coherent quantum noise cancellation (CQNC) scheme offers a broadband cancellation capability with a tunable, wavelength-flexible, and compact system. This is achieved through the implementation of an optical equivalent of an opto-mechanical interaction, facilitated by a down-conversion and a beam-splitting process. The intricate nature of the system and its multiple interacting components made characterizing the interdependent parameters with conventional methods ineffective, leading to the development of an in-situ characterization scheme. The obtained parameters meet the targets for CQNC set in previous studies. With our current realization, we…
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Taxonomy
TopicsMechanical and Optical Resonators · Quantum optics and atomic interactions · Quantum Information and Cryptography
