Title :
Tunable Delay Lines in Silicon Photonics: Coupled Resonators and Photonic Crystals, a Comparison
Author :
Melloni, A. ; Canciamilla, A. ; Ferrari, C. ; Morichetti, F. ; O´Faolain, L. ; Krauss, T.F. ; De La Rue, R. ; Samarelli, A. ; Sorel, M.
Author_Institution :
Dipt. di Elettron. e Inf., Politec. di Milano, Milan, Italy
fDate :
4/1/2010 12:00:00 AM
Abstract :
In this paper, we report a direct comparison between coupled resonator optical waveguides (CROWs) and photonic crystal waveguides (PhCWs), which have both been exploited as tunable delay lines. The two structures were fabricated on the same silicon-on-insulator (SOI) technological platform, with the same fabrication facilities and evaluated under the same signal bit-rate conditions. We compare the frequency- and time-domain response of the two structures; the physical mechanism underlying the tuning of the delay; the main limits induced by loss, dispersion, and structural disorder; and the impact of CROW and PhCW tunable delay lines on the transmission of data stream intensity and phase modulated up to 100 Gb/s. The main result of this study is that, in the considered domain of applications, CROWs and PhCWs behave much more similarly than one would expect. At data rates around 100 Gb/s, CROWs and PhCWs can be placed in competition. Lower data rates, where longer absolute delays are required and propagation loss becomes a critical issue, are the preferred domain of CROWs fabricated with large ring resonators, while at data rates in the terabit range, PhCWs remain the leading technology.
Keywords :
elemental semiconductors; integrated optics; optical couplers; optical delay lines; optical losses; optical materials; optical resonators; optical tuning; optical waveguides; photonic crystals; silicon; silicon-on-insulator; slow light; SOI; Si; coupled resonator optical waveguides; frequency response; integrated devices; optical propagation loss; photonic crystal waveguides; ring resonators; silicon photonics; silicon-on-insulator; slow-light optical devices; time-domain response; tunable delay lines; Delay lines; Frequency; Optical coupling; Optical device fabrication; Optical resonators; Optical ring resonators; Optical waveguides; Photonic crystals; Propagation losses; Silicon on insulator technology; Slow light; coupled resonators; delay lines; differential quadrature phase shift keying (DQPSK); photonic crystals; rings; silicon photonics;
Journal_Title :
Photonics Journal, IEEE
DOI :
10.1109/JPHOT.2010.2044989