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      Satellite-based entanglement distribution over 1200 kilometers

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          Teleporting an unknown quantum state via dual classical and Einstein-Podolsky-Rosen channels

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            Is Open Access

            The Quantum Internet

            H. Kimble (2008)
            Quantum networks offer a unifying set of opportunities and challenges across exciting intellectual and technical frontiers, including for quantum computation, communication, and metrology. The realization of quantum networks composed of many nodes and channels requires new scientific capabilities for the generation and characterization of quantum coherence and entanglement. Fundamental to this endeavor are quantum interconnects that convert quantum states from one physical system to those of another in a reversible fashion. Such quantum connectivity for networks can be achieved by optical interactions of single photons and atoms, thereby enabling entanglement distribution and quantum teleportation between nodes.
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              Long-distance quantum communication with atomic ensembles and linear optics

              , , (2001)
              Quantum communication holds a promise for absolutely secure transmission of secret messages and faithful transfer of unknown quantum states. Photonic channels appear to be very attractive for physical implementation of quantum communication. However, due to losses and decoherence in the channel, the communication fidelity decreases exponentially with the channel length. We describe a scheme that allows to implement robust quantum communication over long lossy channels. The scheme involves laser manipulation of atomic ensembles, beam splitters, and single-photon detectors with moderate efficiencies, and therefore well fits the status of the current experimental technology. We show that the communication efficiency scale polynomially with the channel length thereby facilitating scalability to very long distances.
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                Author and article information

                Journal
                Science
                Science
                American Association for the Advancement of Science (AAAS)
                0036-8075
                1095-9203
                June 15 2017
                June 16 2017
                : 356
                : 6343
                : 1140-1144
                Article
                10.1126/science.aan3211
                28619937
                7c352986-713e-414b-bda8-15289bb9c2ae
                © 2017

                http://www.sciencemag.org/about/science-licenses-journal-article-reuse

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