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Open AccessJournal ArticleDOI

Masked states of an atom coupled to a standing-wave cavity mode

R. Gutiérrez-Jáuregui
- 18 Feb 2020 - 
- Vol. 101, Iss: 2, pp 023825
TLDR
In this article, the form of the eigenstate of an atom coupled to a cavity mode displaying a three-dimensional periodic profile is obtained, and it is shown that the quantized motion leads to degenerate states where the atomic degrees of freedom are masked, that is, upon detection of one component of this composite system the others remain in an entangled state.
Abstract
The form of the eigenstates of an atom coupled to a cavity mode displaying a three-dimensional periodic profile are obtained. It is shown that the quantized motion leads to degenerate states where the atomic degrees of freedom are masked, that is, upon detection of one component of this composite system the others remain in an entangled state. When the system is extended to include drive and dissipation it is found to undergo a dissipative quantum phase transition at a critical drive amplitude. Unlike other phase transitions reported in the literature, the degeneracy prepares the system in a superposition of incompatible states upon detection of the electromagnetic field. Probing the field hints at an order above the transition point that, due to state masking, allows for atomic coherence to survive at long times.

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Citations
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Monitoring the resonantly driven Jaynes-Cummings oscillator by an external two-level emitter : A cascaded open-systems approach

TL;DR: In this article, the consequences of back action in the unidirectional coupling of two cascaded open quantum subsystems connected to the same reservoir at different spatial locations are addressed.
References
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Journal ArticleDOI

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