A versatile source of polarization-entangled photons
arXiv:0911.5115 · doi:10.1103/PhysRevA.81.053842
Abstract
We propose a method for the generation of a large variety of entangled states, encoded in the polarization degrees of freedom of N photons, within the same experimental setup. Starting with uncorrelated photons, emitted from N arbitrary single photon sources, and using linear optical tools only, we demonstrate the creation of all symmetric states, e.g., GHZ- and W-states, as well as all symmetric and non-symmetric total angular momentum eigenstates of the N qubit compound.
4 pages, 3 figures
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Cited by in corpus (9)
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- Multipath interference from large trapped ion chains
- Limits to multipartite entanglement generation with bosons and fermions
- Generating Greenberger-Horne-Zeilinger states using multiport splitters
- Simulating the coupling of angular momenta in distant matter qubits
- Non-locality from N > 2 Independent Single Photon Emitters
- Linear Optical Schemes to Postselect High-Dimensional Dicke States