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      All-optical control of the quantum flow of a polariton condensate

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          Entanglement of the orbital angular momentum states of photons.

          Entangled quantum states are not separable, regardless of the spatial separation of their components. This is a manifestation of an aspect of quantum mechanics known as quantum non-locality. An important consequence of this is that the measurement of the state of one particle in a two-particle entangled state defines the state of the second particle instantaneously, whereas neither particle possesses its own well-defined state before the measurement. Experimental realizations of entanglement have hitherto been restricted to two-state quantum systems, involving, for example, the two orthogonal polarization states of photons. Here we demonstrate entanglement involving the spatial modes of the electromagnetic field carrying orbital angular momentum. As these modes can be used to define an infinitely dimensional discrete Hilbert space, this approach provides a practical route to entanglement that involves many orthogonal quantum states, rather than just two Multi-dimensional entangled states could be of considerable importance in the field of quantum information, enabling, for example, more efficient use of communication channels in quantum cryptography.
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            Bose-Einstein condensation of microcavity polaritons in a trap.

            We have created polaritons in a harmonic potential trap analogous to atoms in optical traps. The trap can be loaded by creating polaritons 50 micrometers from its center that are allowed to drift into the trap. When the density of polaritons exceeds a critical threshold, we observe a number of signatures of Bose-Einstein condensation: spectral and spatial narrowing, a peak at zero momentum in the momentum distribution, first-order coherence, and spontaneous linear polarization of the light emission. The polaritons, which are eigenstates of the light-matter system in a microcavity, remain in the strong coupling regime while going through this dynamical phase transition.
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              Twisted photons

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                Author and article information

                Journal
                Nature Photonics
                Nature Photon
                Springer Science and Business Media LLC
                1749-4885
                1749-4893
                October 2011
                September 11 2011
                October 2011
                : 5
                : 10
                : 610-614
                Article
                10.1038/nphoton.2011.211
                2e96b843-5596-43bc-ab2c-05a6bb01b540
                © 2011

                http://www.springer.com/tdm

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