Title :
Characteristics of Correlated Photon Pairs Generated in Ultracompact Silicon Slow-Light Photonic Crystal Waveguides
Author :
Xiong, Chunle ; Monat, Christelle ; Collins, Matthew J. ; Tranchant, Laurent ; Petiteau, David ; Clark, Alex S. ; Grillet, Christian ; Marshall, Graham D. ; Steel, Michael J. ; Li, Juntao ; O´Faolain, L. ; Krauss, Thomas F. ; Eggleton, Benjamin J.
Author_Institution :
Centre for Ultrahigh-bandwidth Devices for Opt. Syst. (CUDOS), Univ. of Sydney, Sydney, NSW, Australia
Abstract :
We report the characterization of correlated photon pairs generated in dispersion-engineered silicon slow-light photonic crystal waveguides pumped by picosecond pulses. We found that taking advantage of the 15-nm flat-band slow-light window (vg ~ c/30), the bandwidth for correlated photon-pair generation in 96- and 196-μm-long waveguides was at least 11.2 nm, while a 396-μm-long waveguide reduced the bandwidth to 8 nm (only half of the slow-light bandwidth due to the increased impact of phase matching in a longer waveguide). The key metrics for a photon-pair source: coincidence to accidental ratio (CAR) and pair brightness were measured to be a maximum 33 at a pair generation rate of 0.004 pair per pulse in a 196- μm-long waveguide. Within the measurement errors, the maximum CAR achieved in 96-, 196-, and 396-μm-long waveguides is constant. The noise analysis shows that detector dark counts, leaked pump light, linear and nonlinear losses, multiple pair generation, and detector jitter are the limiting factors to the CAR performance of the sources.
Keywords :
brightness; elemental semiconductors; high-speed optical techniques; jitter; measurement errors; multiwave mixing; optical correlation; optical dispersion; optical losses; optical noise; optical phase matching; optical pumping; optical waveguides; photodetectors; photonic crystals; quantum optics; silicon; slow light; CAR; CAR performance; Si; coincidence-to-accidental ratio; correlated photon pair generation; detector dark counts; detector jitter; flat-band slow-light window; leaked pump light; limiting factors; linear losses; measurement errors; noise analysis; nonlinear losses; pair brightness; phase matching; photon-pair source; picosecond pulses; size 196 mum; size 396 mum; size 96 mum; slow-light bandwidth; ultracompact dispersion-engineered silicon slow-light photonic crystal waveguides; Arrayed waveguide gratings; Bandwidth; Detectors; Noise; Photonics; Silicon; Nonlinear optics; quantum photonics; silicon photonic crystal; slow light;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2012.2188995