DocumentCode
1756943
Title
Multimode Polymer Waveguide Components for Complex On-Board Optical Topologies
Author
Hashim, Aniqah ; Bamiedakis, N. ; Penty, Richard V. ; White, Ian H.
Author_Institution
Eng. Dept., Univ. of Cambridge, Cambridge, UK
Volume
31
Issue
24
fYear
2013
fDate
Dec.15, 2013
Firstpage
3962
Lastpage
3969
Abstract
Multimode polymer waveguides are an attractive transmission medium for board-level optical links as they provide high bandwidth, relaxed alignment tolerances, and can be directly integrated onto conventional printed circuit boards. However, the performance of multimode waveguide components depends on the launch conditions at the component input, complicating their use in topologies that require the concatenation of multiple multimode components. This paper presents key polymer components for a multichannel optical bus and reports their performance under different launch conditions, enabling useful rules that can be used to design complex interconnection topologies to be derived. The components studied are multimode signal splitters and combiners, 90°-crossings, S-bends, and 90°-bends. By varying the width of the splitter arms, a splitting ratio between 1% and 95% is achieved from the 1 × 2 splitters, while low-loss signal combining is demonstrated with the waveguide combiners. It is shown that a 3 dB improvement in the combiner excess loss can be achieved by increasing the bus width by 50 μm. The worst-case insertion loss of 50 × 100 μm waveguide crossings is measured to be 0.1 dB/crossing. An empirical method is proposed and used to estimate the insertion losses of on-board optical paths of a polymeric four-channel optical bus module. Good agreement is achieved between the predicted and measured values. Although the components and empirical method have been tailored for use in a multichannel optical bus architecture, they can be used for any on-board optical interconnection topology.
Keywords
integrated optoelectronics; optical beam splitters; optical communication equipment; optical losses; optical polymers; optical waveguides; board-level optical links; complex interconnection topologies; complex on-board optical topologies; empirical method; low-loss signal; multichannel optical bus architecture; multimode polymer waveguide components; multimode signal combiner; multimode signal splitter; on-board optical interconnection topology; on-board optical paths; polymeric four-channel optical bus module; printed circuit boards; splitting ratio; transmission medium; waveguide crossings; worst-case insertion loss; Loss measurement; Optical fibers; Optical polymers; Optical waveguide components; Optical interconnections; optical polymer; optical waveguides;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2013.2278382
Filename
6583985
Link To Document