Experimental violation of a Bell-like inequality with optical vortex beams
arXiv:1505.06103 · doi:10.1088/1367-2630/17/11/113046
Abstract
Optical beams with topological singularities have a Schmidt decomposition. Hence, they display features typically associated with bipartite quantum systems; in particular, these classical beams can exhibit entanglement. This classical entanglement can be quantified by a Bell inequality formulated in terms of Wigner functions. We experimentally demonstrate the violation of this inequality for Laguerre-Gauss (LG) beams and confirm that the violation increases with increasing orbital angular momentum. Our measurements yield negativity of the Wigner function at the origin for $\LG_{10}$ beams, whereas for $\LG_{20}$ we always get a positive value.
6 pages, 4 eps-color figures. Comments welcome!
References in corpus (8)
- Complete experimental toolbox for alignment-free quantum communication
- Classical entanglement: Oxymoron or resource?
- Classically entangled optical beams for high-speed kinematic sensing
- Shifting the Quantum-Classical Boundary: Theory and Experiment for Statistically Classical Optical Fields
- Quantum and classical separability of spin-orbit laser modes
- Determination of the Schmidt number
- Violation of Bell's inequality for phase singular beams
- Violation of Bell's Inequalities with Classical Shimony-Wolf States: Theory and Experiment
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