Quantum metrology with cold atomic ensembles

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Abstract

Quantum metrology uses quantum features such as entanglement and squeezing to improve the sensitivity of quantum-limited measurements. Long established as a valuable technique in optical measurements such as gravitational-wave detection, quantum metrology is increasingly being applied to atomic instruments such as matter-wave interferometers, atomic clocks, and atomic magnetometers. Several of these new applications involve dual optical/atomic quantum systems, presenting both new challenges and new opportunities. Here we describe an optical magnetometry system that achieves both shot-noise-limited and projection-noise-limited performance, allowing study of optical magnetometry in a fully-quantum regime [1]. By near-resonant Faraday rotation probing, we demonstrate measurement-based spin squeezing in a magnetically-sensitive atomic ensemble [2-4]. The versatility of this system allows us also to design metrologically-relevant optical nonlinearities, and to perform quantum-noise-limited measurements with interacting photons. As a first interaction-based measurement [5], we implement a non-linear metrology scheme proposed by Boixo et al. with the surprising feature of precision scaling better than the 1/N "Heisenberg limit" [6]. © Owned by the authors, published by EDP Sciences, 2013.

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APA

Mitchell, M. W., Sewell, R. J., Napolitano, M., Koschorreck, M., Dubost, B., Behbood, N., & Kubasik, M. (2013). Quantum metrology with cold atomic ensembles. In EPJ Web of Conferences (Vol. 57). https://doi.org/10.1051/epjconf/20135703004

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