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      Heisenberg-Limited Atom Clocks Based on Entangled Qubits

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          Abstract

          We present a quantum-enhanced atomic clock protocol based on groups of sequentially larger Greenberger-Horne-Zeilinger (GHZ) states that achieves the best clock stability allowed by quantum theory up to a logarithmic correction. Importantly the protocol is designed to work under realistic conditions where the drift of the phase of the laser interrogating the atoms is the main source of decoherence. The simultaneous interrogation of the laser phase with a cascade of GHZ states realizes an incoherent version of the phase estimation algorithm that enables Heisenberg-limited operation while extending the coherent interrogation time beyond the laser noise limit. We compare and merge the new protocol with existing state of the art interrogation schemes, and identify the precise conditions under which entanglement provides an advantage for clock stabilization: it allows a significant gain in the stability for short averaging time.

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          Quantum Metrology

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            A Molecular Beam Resonance Method with Separated Oscillating Fields

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              Improvement of Frequency Standards with Quantum Entanglement

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                Author and article information

                Journal
                PRLTAO
                Physical Review Letters
                Phys. Rev. Lett.
                American Physical Society (APS)
                0031-9007
                1079-7114
                May 2014
                May 15 2014
                : 112
                : 19
                Article
                10.1103/PhysRevLett.112.190403
                24877919
                33e5ff15-f44d-4ea4-80b0-339e6c55e7a0
                © 2014

                http://link.aps.org/licenses/aps-default-license

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