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      Quantum memories: emerging applications and recent advances

      , , , , , ,
      Journal of Modern Optics
      Informa UK Limited

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          Quantum repeaters based on atomic ensembles and linear optics

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            Quantum register based on individual electronic and nuclear spin qubits in diamond.

            The key challenge in experimental quantum information science is to identify isolated quantum mechanical systems with long coherence times that can be manipulated and coupled together in a scalable fashion. We describe the coherent manipulation of an individual electron spin and nearby individual nuclear spins to create a controllable quantum register. Using optical and microwave radiation to control an electron spin associated with the nitrogen vacancy (NV) color center in diamond, we demonstrated robust initialization of electron and nuclear spin quantum bits (qubits) and transfer of arbitrary quantum states between them at room temperature. Moreover, nuclear spin qubits could be well isolated from the electron spin, even during optical polarization and measurement of the electronic state. Finally, coherent interactions between individual nuclear spin qubits were observed and their excellent coherence properties were demonstrated. These registers can be used as a basis for scalable, optically coupled quantum information systems.
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              Quantum entanglement between an optical photon and a solid-state spin qubit.

              Quantum entanglement is among the most fascinating aspects of quantum theory. Entangled optical photons are now widely used for fundamental tests of quantum mechanics and applications such as quantum cryptography. Several recent experiments demonstrated entanglement of optical photons with trapped ions, atoms and atomic ensembles, which are then used to connect remote long-term memory nodes in distributed quantum networks. Here we realize quantum entanglement between the polarization of a single optical photon and a solid-state qubit associated with the single electronic spin of a nitrogen vacancy centre in diamond. Our experimental entanglement verification uses the quantum eraser technique, and demonstrates that a high degree of control over interactions between a solid-state qubit and the quantum light field can be achieved. The reported entanglement source can be used in studies of fundamental quantum phenomena and provides a key building block for the solid-state realization of quantum optical networks.
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                Author and article information

                Journal
                Journal of Modern Optics
                Journal of Modern Optics
                Informa UK Limited
                0950-0340
                1362-3044
                March 16 2016
                November 12 2016
                March 16 2016
                November 12 2016
                : 63
                : 20
                : 2005-2028
                Article
                10.1080/09500340.2016.1148212
                27695198
                e1d99a8c-9e70-420b-baa2-893426d9e971
                © 2016

                http://creativecommons.org/licenses/by-nc-nd/4.0/

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