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Overcoming detection loss and noise in squeezing-based optical sensing

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Frascella,  Gaetano
Chekhova Research Group, Research Groups, Max Planck Institute for the Science of Light, Max Planck Society;
University of Erlangen-Nürnberg;
International Max Planck Research School, Max Planck Institute for the Science of Light, Max Planck Society;

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Agne,  Sascha
Chekhova Research Group, Research Groups, Max Planck Institute for the Science of Light, Max Planck Society;

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Chekhova,  Maria V.
Chekhova Research Group, Research Groups, Max Planck Institute for the Science of Light, Max Planck Society;
University of Erlangen-Nürnberg;

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Citation

Frascella, G., Agne, S., Khalili, F. Y., & Chekhova, M. V. (2021). Overcoming detection loss and noise in squeezing-based optical sensing. npj Quantum Information, 7: 72. doi:10.1038/s41534-021-00407-0.


Cite as: https://hdl.handle.net/21.11116/0000-0008-8B0B-0
Abstract
Among the known resources of quantum metrology, one of the most practical and efficient is squeezing. Squeezed states of atoms and light improve the sensing of the phase, magnetic field, polarization, mechanical displacement. They promise to considerably increase signal-to-noise ratio in imaging and spectroscopy, and are already used in real-life gravitational-wave detectors. But despite being more robust than other states, they are still very fragile, which narrows the scope of their application. In particular, squeezed states are useless in measurements where the detection is inefficient or the noise is high. Here, we experimentally demonstrate a remedy against loss and noise: strong noiseless amplification before detection. This way, we achieve loss-tolerant operation of an interferometer fed with squeezed and coherent light. With only 50% detection efficiency and with noise exceeding the level of squeezed light more than 50 times, we overcome the shot-noise limit by 6 dB. Sub-shot-noise phase sensitivity survives up to 87% loss. Application of this technique to other types of optical sensing and imaging promises a full use of quantum resources in these fields.