We report on an experiment that demonstrates the frequency up-conversion of telecommunication wavelength single-photon-level pulses to be resonant with a Pr3+:Y2SiO5 crystal. We convert the telecom photons at 1570nm to 606nm using a periodically-poled potassium titanyl phosphate nonlinear waveguide. The maximum device efficiency (which includes all optical loss) is inferred to be ηdevmax=22±1 (internal efficiency ηint=75±8) with a signal to noise ratio exceeding 1 for single-photon-level pulses with durations of up to 560ns. The converted light is then stored in the crystal using the atomic frequency comb scheme with storage and retrieval efficiencies exceeding ηAFC=20 for predetermined storage times of up to 5μs. The retrieved light is time delayed from the noisy conversion process allowing us to measure a signal to noise ratio exceeding 100 with telecom single-photon-level inputs. These results represent the first demonstration of single-photon-level optical storage interfaced with frequency up-conversion.
@article{arxiv.1407.3094,
title = {Storage of up-converted telecom photons in a doped crystal},
author = {Nicolas Maring and Kutlu Kutluer and Joachim Cohen and Matteo Cristiani and Margherita Mazzera and Patrick M. Ledingham and Hugues de Riedmatten},
journal= {arXiv preprint arXiv:1407.3094},
year = {2014}
}