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      Deterministic teleportation of a quantum gate between two logical qubits

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

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            Is Open Access

            Entanglement of Formation of an Arbitrary State of Two Qubits

            The entanglement of a pure state of a pair of quantum systems is defined as the entropy of either member of the pair. The entanglement of formation of a mixed state is defined as the minimum average entanglement of an ensemble of pure states that represents the given mixed state. An earlier paper [Phys. Rev. Lett. 78, 5022 (1997)] conjectured an explicit formula for the entanglement of formation of a pair of binary quantum objects (qubits) as a function of their density matrix, and proved the formula to be true for a special class of mixed states. The present paper extends the proof to arbitrary states of this system and shows how to construct entanglement-minimizing pure-state decompositions.
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              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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                Author and article information

                Journal
                Nature
                Nature
                Springer Nature America, Inc
                0028-0836
                1476-4687
                September 5 2018
                Article
                10.1038/s41586-018-0470-y
                30185908
                041df3e4-20cd-4ebc-9436-e9d96c5f1760
                © 2018

                http://www.springer.com/tdm

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