Title :
Optical Crosspoint Matrix Using Broadband Resonant Switches
Author :
DasMahapatra, P. ; Stabile, R. ; Rohit, A. ; Williams, K.A.
Author_Institution :
Dept. of Electr. Eng., Eindhoven Univ. of Technol., Eindhoven, Netherlands
Abstract :
A low loss, broadband crosspoint switch matrix using high-order resonant optical switch elements is designed, and fabricated for the first time. Multi-path routing is demonstrated for a broad range of representative paths across the circuit. Connections are assessed between eight inputs and four outputs to show losses as low as 0.9 dB per off state ring and 2.0 dB per on state ring. Analysis of the on-state and off-state transfer functions reveal switch extinction ratios exceeding 20 dB for operational bandwidths of 100 GHz for twenty-five different path combinations. Switching is implemented with thermo-optic tuning to give 100-GHz passbands and stopbands. Thermo-optic actuation with a 2-D array of on-chip microheaters allows rise and fall switching times of 17 and 4 microseconds respectively. Power penalties of less than 1.0 dB at 10 Gb/s are observed for twenty eight paths and comparable performance is observed for 40 Gb/s routing on representative paths through the switch matrix without significant signal degradation.
Keywords :
integrated optoelectronics; optical arrays; optical design techniques; optical fabrication; optical losses; optical switches; optical transfer function; optical tuning; thermo-optical devices; 2D array; bandwidth 100 GHz; bit rate 10 Gbit/s; bit rate 40 Gbit/s; broadband resonant switches; high-order resonant optical switch elements; low loss broadband crosspoint switch matrix; multipath routing; off state ring; off-state transfer function; on state ring; on-chip microheaters; on-state transfer function; operational bandwidth; optical crosspoint matrix; pass-band; power penalty; stopband; switch extinction ratio; switching times; thermo-optic actuation; thermo-optic tuning; Optical device fabrication; Optical ring resonators; Optical switches; Optical waveguides; Routing; Transmission line matrix methods; Silicon on insulator; optical resonators; optical switch; photonic integrated circuits;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2013.2296746