arXiv · 1309.3202
Spectral multiplexing for scalable quantum photonics using an atomic frequency comb quantum memory and feed-forward control
Abstract
Future multi-photon applications of quantum optics and quantum information science require quantum memories that simultaneously store many photon states, each encoded into a different optical mode, and enable one to select the mapping between any input and a specific retrieved mode during storage. Here we show, with the example of a quantum repeater, how to employ spectrally-multiplexed states and memories with fixed storage times that allow such mapping between spectral modes. Furthermore, using a Ti:Tm:LiNbO3 waveguide cooled to 3 Kelvin, a phase modulator, and a spectral filter, we demonstrate storage followed by the required feed-forward-controlled frequency manipulation with time-bin qubits encoded into up to 26 multiplexed spectral modes and 97% fidelity.
Explore related subjects
Keep this discovery
Neil Sinclair, Erhan Saglamyurek, Hassan Mallahzadeh, Joshua A. Slater, Mathew George, Raimund Ricken, Morgan P. Hedges, Daniel Oblak, Christoph Simon, Wolfgang Sohler, Wolfgang Tittel. 2014-07-18. Spectral multiplexing for scalable quantum photonics using an atomic frequency comb quantum memory and feed-forward control. https://doi.org/10.1103/physrevlett.113.053603
Cite the original work for its findings. Save a collection to share your selection of sources.