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Coherently opening a high-Q cavity

Tufarelli, Tommaso; Serafini, Alessio; Ferraro, Alessandro; Kim, M S; Bose, Sougato

Authors

Alessio Serafini

Alessandro Ferraro

M S Kim

Sougato Bose



Abstract

We propose a general framework to effectively “open” a high-Q resonator, that is, to release the quantum state initially prepared in it in the form of a traveling electromagnetic wave. This is achieved by employing a mediating mode that scatters coherently the radiation from the resonator into a one-dimensional continuum of modes such as a waveguide. The same mechanism may be used to “feed” a desired quantum field to an initially empty cavity. Switching between an open and “closed” resonator may then be obtained by controlling either the detuning of the scatterer or the amount of time it spends in the resonator. First, we introduce the model in its general form, identifying (i) the traveling mode that optimally retains the full quantum information of the resonator field and (ii) a suitable figure of merit that we study analytically in terms of the system parameters. Then, we discuss two feasible implementations based on ensembles of two-level atoms interacting with cavity fields. In addition, we discuss how to integrate traditional cavity QED in our proposal using three-level atoms.

Citation

Tufarelli, T., Serafini, A., Ferraro, A., Kim, M. S., & Bose, S. (2014). Coherently opening a high-Q cavity. Physical Review Letters, 112(13), doi:10.1103/PhysRevLett.112.133605

Journal Article Type Article
Acceptance Date Mar 4, 2014
Online Publication Date Apr 4, 2014
Publication Date Apr 4, 2014
Deposit Date Mar 13, 2018
Publicly Available Date Dec 3, 2018
Journal Physical Review Letters
Print ISSN 0031-9007
Publisher American Physical Society
Peer Reviewed Peer Reviewed
Volume 112
Issue 13
Article Number 133605
DOI https://doi.org/10.1103/PhysRevLett.112.133605
Public URL https://nottingham-repository.worktribe.com/output/1113865
Publisher URL https://journals.aps.org/prl/abstract/10.1103/PhysRevLett.112.133605

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