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      Quantum and classical correlations of intense beams of light via joint photodetection

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          Abstract

          We address joint photodetection as a method to discriminate between the classical correlations of a thermal beam divided by a beam splitter and the quantum entanglement of a twin-beam obtained by parametric downconversion. We show that for intense beams of light the detection of the difference photocurrent may be used, in principle, in order to reveal entanglement, while the simple measurement of the correlation coefficient is not sufficient. We have experimentally measured the correlation coefficient and the variance of the difference photocurrent on several classical and quantum states. Results are in good agreement with theoretical predictions taking into account the extra noise in the generated fields that is due to the pump-laser fluctuations.

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          Unconditional quantum teleportation

          Quantum teleportation of optical coherent states was demonstrated experimentally using squeezed-state entanglement. The quantum nature of the achieved teleportation was verified by the experimentally determined fidelity Fexp = 0.58 +/- 0.02, which describes the match between input and output states. A fidelity greater than 0.5 is not possible for coherent states without the use of entanglement. This is the first realization of unconditional quantum teleportation where every state entering the device is actually teleported.
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            Thermal photon statistics in spontaneous parametric downconversion

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              Author and article information

              Journal
              2005-08-05
              Article
              10.1088/1464-4266/7/12/031
              quant-ph/0508047
              b4694837-2e5d-4f02-a7cb-66acad5d5ba8
              History
              Custom metadata
              J. Opt. B 7, 652 (2005).
              20 Pages, 16 Low Resolution Figs. Full Res version at http://qinf.fisica.unimi.it/~paris/pubs.html To appear on J. Opt. B
              quant-ph

              Quantum physics & Field theory
              Quantum physics & Field theory

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