| Literature DB >> 31976687 |
Tim van Leent1,2, Matthias Bock3, Robert Garthoff1,2, Kai Redeker1,2, Wei Zhang1,2, Tobias Bauer3, Wenjamin Rosenfeld1,2,4, Christoph Becher3, Harald Weinfurter1,2,4.
Abstract
Entanglement between stationary quantum memories and photonic channels is the essential resource for future quantum networks. Together with entanglement distillation, it will enable efficient distribution of quantum states. We report on the generation and observation of entanglement between a ^{87}Rb atom and a photon at telecom wavelength transmitted through up to 20 km of optical fiber. For this purpose, we use polarization-preserving quantum frequency conversion to transform the wavelength of a photon entangled with the atomic spin state from 780 nm to the telecom S band at 1522 nm. We achieve an unprecedented external device conversion efficiency of 57% and observe an entanglement fidelity between the atom and telecom photon of ≥78.5±0.9% after transmission through 20 km of optical fiber, mainly limited by decoherence of the atomic state. This result is an important milestone on the road to distribute quantum information on a large scale.Year: 2020 PMID: 31976687 DOI: 10.1103/PhysRevLett.124.010510
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161