Photonics Research, Volume. 7, Issue 7, A27(2019)
High-dimension experimental tomography of a path-encoded photon quantum state
Fig. 1. The working principle of path-encoded quantum state reconstruction. (a) Geometry: the spatial arrangement of paths. (b), (c) Paths passing through a cylindrical lens to an image sensor. Along one direction, the paths are interfered by the lens. Along the other direction, the paths are unaltered. The off-diagonal elements of the density matrix
Fig. 2. State reconstruction method. (a) Six paths are shown in the figure and encode the state
Fig. 3. Experiment demonstrating the state reconstruction method. (a) State preparation in blue box: the Rayleigh length of an 808 nm diode laser is set by a beam expander. A series of displacement crystals (xtal) and half- and quarter-wave plates (labeled by the angles
Fig. 4. Experimental results. (a) Experimental (dots) and theoretical (curves) coherences
Fig. 5. Experimental results. (a) Fidelity as a function of the wave-plate angles
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D. Curic, L. Giner, J. S. Lundeen, "High-dimension experimental tomography of a path-encoded photon quantum state," Photonics Res. 7, A27 (2019)
Special Issue: QUANTUM PHOTONICS
Received: Nov. 28, 2018
Accepted: May. 2, 2019
Published Online: Jun. 4, 2019
The Author Email: D. Curic (dcuric@ucalgary.ca)