DocumentCode
895566
Title
Limitations to and solutions for optical loss in optical backplanes
Author
Uhlig, Steffen ; Robertsson, Mats
Author_Institution
Linkoping Univ., Norrkoping, Sweden
Volume
24
Issue
4
fYear
2006
fDate
4/1/2006 12:00:00 AM
Firstpage
1710
Lastpage
1724
Abstract
In this paper, recent literature on the discussion on high-speed backplanes with optical, electrical, and mixed solutions, as well as on polymer-waveguide systems suitable for implementation on printed circuit boards (PCBs), is reviewed from the point of view of their optical losses. The reevaluation of the optical power budget for realistic high-speed optical polymer-waveguide links on backplanes showed that signal amplification is necessary to boost the signal, which resulted in an additional literature review on advances in optical amplifiers based on silicon bench technology available. Finally, a concept study of an active optical waveguide amplifier device, based on planar optical waveguide amplifiers and semiconductor optical amplifiers, was performed. The amplification device can be flip-chip mounted on the backplane to compensate for optical losses due to signal routing, which increases the overall degree of freedom in waveguide routing on high-density interconnects for backplanes. The hybrid concept design guarantees compatibility with the processes of the PCB industry.
Keywords
flip-chip devices; integrated optoelectronics; optical backplanes; optical losses; optical planar waveguides; optical polymers; printed circuits; semiconductor optical amplifiers; waveguide lasers; PCB industry; active optical waveguide amplifier; amplification device; flip-chip mounting; high-density interconnects; high-speed backplanes; optical amplifiers; optical backplanes; optical loss; optical losses; optical power budget; planar optical waveguide amplifiers; polymer-waveguide systems; printed circuit boards; semiconductor optical amplifiers; signal amplification; signal routing; silicon bench technology; Backplanes; High speed optical techniques; Optical devices; Optical interconnections; Optical losses; Optical polymers; Optical waveguides; Semiconductor optical amplifiers; Semiconductor waveguides; Stimulated emission; Optical backplane; optical interconnects; optical power budget; planar optical waveguide amplifier; semiconductor optical amplifier;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2006.870978
Filename
1618761
Link To Document