Title :
A Temperature-Insensitive Third-Order Coupled-Resonator Filter for On-Chip Terabit/s Optical Interconnects
Author :
Li, Qing ; Yegnanarayanan, Siva ; Soltani, Mohammad ; Alipour, Payam ; Adibi, Ali
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
Abstract :
We design and demonstrate a temperature-insensitive third-order coupled-resonator filter in the silicon-on-insulator platform for on-chip terabit/s optical interconnects. Optimum filter design enables up to 21 flat-band filter channels with more than 10 dB through-port extinction, more than 0.75-nm 3-dB bandwidth, and less than 1-dB insertion loss. By overlaying a negative thermo-optic coefficient polymer cladding on top of the silicon device, the sensitivity of the filter performance to the ambient temperature variations is significantly reduced. Moreover, through careful balancing between the dispersion of the bandwidth and the thermal property of the filter, the redundant bandwidth of filter channels due to dispersion is employed as thermal guard bands. As a result, the filter can accommodate 21 wavelength-division-multiplexing channels with data rates up to 100 Gb/s per wavelength channel while providing sufficient thermal guard bands to tolerate more than ±15 °C temperature fluctuations in the on-chip environment.
Keywords :
integrated optics; optical communication equipment; optical couplers; optical design techniques; optical dispersion; optical filters; optical interconnections; optical losses; optical polymers; optical resonators; silicon-on-insulator; thermo-optical effects; wavelength division multiplexing; Si; bit rate 100 Gbit/s; filter design; filter performance; flat-band filter channels; insertion loss; negative thermo-optic coefficient polymer cladding; on-chip terabit/s optical interconnects; redundant bandwidth; silicon device; silicon-on-insulator platform; temperature fluctuations; temperature-insensitive third-order coupled-resonator filter; thermal guard bands; thermal property; through-port extinction; wavelength-division-multiplexing channels; Bandwidth; Dispersion; Filtering theory; Optical filters; Optical switches; Resonator filters; Silicon; Coupled-resonators; silicon photonics; temperature-insensitive; terabit; wavelength channels;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2010.2085426