DocumentCode :
18073
Title :
Wavelength Locking and Thermally Stabilizing Microring Resonators Using Dithering Signals
Author :
Padmaraju, Kishore ; Logan, Dylan F. ; Shiraishi, Tomohiro ; Ackert, Jason J. ; Knights, Andrew P. ; Bergman, Keren
Author_Institution :
Dept. of Electr. Eng., Columbia Univ., New York, NY, USA
Volume :
32
Issue :
3
fYear :
2014
fDate :
Feb.1, 2014
Firstpage :
505
Lastpage :
512
Abstract :
The bandwidth bottleneck looming for traditional electronic interconnects has driven the consideration of optical communications technologies as realized through the complementary metal-oxide-semiconductor-compatible silicon nanophotonic platform. Within the silicon photonics platform, silicon microring resonators have received a great deal of attention for their ability to implement the critical functionalities of an on-chip optical network while offering superior energy-efficiency and small footprint characteristics. However, silicon microring-based structures have a large susceptibility to fabrication errors and changes in temperature. Integrated heaters that provide local heating of individual microrings offer a method to correct for these effects, but no large-scale solution has been achieved to automate their tuning process. In this context, we present the use of dithering signals as a broad method for automatic wavelength tuning and thermal stabilization of microring resonators. We show that this technique can be manifested in low-speed analog and digital circuitry, lending credence to its ability to be scaled to a complete photonic interconnection network.
Keywords :
microcavities; micromechanical resonators; nanophotonics; optical resonators; silicon; complementary metal-oxide-semiconductor; dithering signals; electronic interconnects; integrated heaters; low-speed analog circuitry; low-speed digital circuitry; on-chip optical network; optical communications technologies; photonic interconnection network; silicon nanophotonic platform; thermal stabilization; thermally stabilizing microring resonators; wavelength locking; wavelength tuning; Adaptive optics; Heating; Laser tuning; Optical feedback; Optical resonators; Silicon; Thermal stability; Frequency locked loops; multi-processor interconnection; optical interconnects; optical resonators;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2013.2294564
Filename :
6680601
Link To Document :
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