Published July 2018 | Version Submitted + Published
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Observation of Quantum Spin Noise in a 1D Light-Atoms Quantum Interface

  • 1. ROR icon University of Copenhagen

Abstract

We observe collective quantum spin states of an ensemble of atoms in a one-dimensional light-atom interface. Strings of hundreds of cesium atoms trapped in the evanescent field of a tapered nanofiber are prepared in a coherent spin state, a superposition of the two clock states. A weak quantum nondemolition measurement of one projection of the collective spin is performed using a detuned probe dispersively coupled to the collective atomic observable, followed by a strong destructive measurement of the same spin projection. For the coherent spin state we achieve the value of the quantum projection noise 40 dB above the detection noise without atoms, well above the 3 dB required for reconstruction of the negative Wigner function of nonclassical states. We analyze the effects of strong spatial inhomogeneity inherent to atoms trapped and probed by the evanescent waves. We furthermore study temporal dynamics of quantum fluctuations relevant for measurement-induced spin squeezing and assess the impact of thermal atomic motion. This work paves the road towards observation of spin-squeezed and entangled states and many-body interactions in 1D spin ensembles.

Additional Information

© 2018 The Author(s). Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI. (Received 1 February 2018; revised manuscript received 14 June 2018; published 12 July 2018) This work has been supported by the ERC grant INTERFACE (Grant No. ERC-2011-ADG 20110209), the U.S. ARO Grant No. W911NF-11-0235, the EU grant SIQS (Grant No. 600645), and the John Templeton Foundation.

Attached Files

Published - PhysRevX.8.031010.pdf

Submitted - 1708.08387

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PhysRevX.8.031010.pdf

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Additional details

Identifiers

Eprint ID
88304
Resolver ID
CaltechAUTHORS:20180726-135033974

Related works

Funding

European Research Council (ERC)
20110209
Army Research Office (ARO)
W911NF-11-0235
European Union
600645
John Templeton Foundation

Dates

Created
2018-07-26
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Updated
2021-11-16
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