Frontiers of Optoelectronics, Volume. 11, Issue 2, 148(2018)

Franson interferometry with a single pulse

Eric Y.1、*, Costantino CORBARI2, Alexey V.3, Peter G.2, and Li QIAN1
Author Affiliations
  • 1Department of Electrical and Computer Engineering, University of Toronto, Toronto, ON M5S 3G4, Canada
  • 2Optoelectronics Research Centre, University of Southampton, Southampton SO17 1BJ, UK
  • 3Fiber Optics Research Center of the Russian Academy of Sciences, Moscow 119333, Russia
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    In classical optics, interference occurs between two optical fields when they are indistinguishable from one another. The same holds true in quantum optics, where a particular experiment, the Franson interferometer, involves the interference of a photon pair with a time-delayed version of itself. The canonical version of this interferometer requires that the time delay be much shorter than the coherence length of the pump used to generate the photon pair, so as to guarantee indistinguishability. However, when this time delay is comparable to the coherence length, conventional wisdom suggests that interference visibility degrades significantly. In this work, though, we show that the interference visibility can be restored through judicious temporal post-selection. Utilizing correlated photon pairs generated by a pump whose pulsewidth (460 ps) is shorter than the interferometer’s time delay (500 ps), we are able to observe a fringe visibility of 97.44.3%. We believe this new method can be used for the encoding of high-dimensional quantum information in the temporal domain.1)

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    Eric Y., Costantino CORBARI, Alexey V., Peter G., Li QIAN. Franson interferometry with a single pulse[J]. Frontiers of Optoelectronics, 2018, 11(2): 148

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    Paper Information

    Category: RESEARCH ARTICLE

    Received: Feb. 2, 2018

    Accepted: May. 7, 2018

    Published Online: Oct. 7, 2018

    The Author Email: Y. Eric (eric.zhu@utoronto.ca)

    DOI:10.1007/s12200-018-0809-x

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