Title :
Continuous Slow and Fast Light Generation Using a Silicon-on-Insulator Microring Resonator Incorporating a Multimode Interference Coupler
Author :
Shahoei, Hiva ; Dan-Xia Xu ; Schmid, Jens H. ; Jianping Yao
Author_Institution :
Microwave Photonics Res. Lab., Univ. of Ottawa, Ottawa, ON, Canada
Abstract :
Continuously tunable slow and fast light generation using a silicon-on-insulator microring resonator (MRR) incorporating a multimode interference (MMI) coupler is proposed and experimentally demonstrated. The MMI coupler is optimized for the transverse-magnetic mode. By changing the input polarization state, the self-coupling coefficient and the loss factor of the MRR are changed. The depth and the bandwidth of the MRR are tunable by tuning the self-coupling coefficient and the loss factor; thus, a tunable phase shift can be achieved at the resonance wavelength, which leads to the generation of a tunable slow and fast light. The proposed scheme is experimentally evaluated. A tunable slow light with a maximum time delay of 35 ps and a slow-to-fast light with a continuously tunable range of 102 ps are achieved for a 13.5-GHz Gaussian optical pulse by using a double-MMI coupler MRR and a single-MMI coupler MRR, respectively.
Keywords :
integrated optics; light interference; light polarisation; micro-optomechanical devices; micromechanical resonators; optical couplers; optical losses; optical resonators; optical tuning; silicon-on-insulator; slow light; Gaussian optical pulse; Si; continuously tunable slow light generation; double-MMI coupler MRR; fast light generation; frequency 13.5 GHz; input polarization state; loss factor; multimode interference coupler; resonance wavelength; self-coupling coefficient; silicon-on-insulator microring resonator; single-MMI coupler MRR; time delay; transverse-magnetic mode; tunable phase shift; Couplers; Delay effects; Delays; Fast light; Optical polarization; Slow light; Tuning; Silicon-on-insulator (SOI) microring resonator (MRR); silicon photonics; slow and fast light;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2014.2339365