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
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