| Literature DB >> 26861681 |
Tao Li1, Guan-Yu Wang2, Fu-Guo Deng2, Gui-Lu Long1,3,4.
Abstract
Hyperentanglement is an effective quantum source for quantum communication network due to its high capacity, low loss rate, and its unusual character in teleportation of quantum particle fully. Here we present a deterministic error-correction scheme for nonlocal spatial-polarization hyperentangled photon pairs over collective-noise channels. In our scheme, the spatial-polarization hyperentanglement is first encoded into a spatial-defined time-bin entanglement with identical polarization before it is transmitted over collective-noise channels, which leads to the error rejection of the spatial entanglement during the transmission. The polarization noise affecting the polarization entanglement can be corrected with a proper one-step decoding procedure. The two parties in quantum communication can, in principle, obtain a nonlocal maximally entangled spatial-polarization hyperentanglement in a deterministic way, which makes our protocol more convenient than others in long-distance quantum communication.Entities:
Year: 2016 PMID: 26861681 PMCID: PMC4748264 DOI: 10.1038/srep20677
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic diagram for the time-bin entanglement encoding in nonlocal spatial-polarization hyperentanglement distribution.
PBS represents a polarizing beam splitter that transmits the horizonal photons and reflects the vertical polarized photons . PC stands for a Pockels cell which completes a polarization bit-flip operation on the photon passing through when it is activated.
Figure 2Schematic diagram for error correction decoding in nonlocal spatial-polarization hyperentanglement distribution.
Encoder represents the time-bin encoding setup that transforms the spatial-polarization hyperentanglement into the time-bin entanglement.