Loss and Bandwidth Studies on Multimode Polymer Waveguide Components for On-Board High-Speed Optical Interconnects
Jian Chen, Nikolaos Bamiedakis, Peter P. Vasil'ev, Richard V. Penty,, Ian H. White

TL;DR
This paper investigates loss and bandwidth characteristics of multimode polymer waveguides and components, providing design guidelines to optimize high-speed optical interconnects for on-board communication systems.
Contribution
It offers comprehensive experimental analysis of loss and bandwidth in multimode polymer waveguides and components, informing design choices for high-speed optical backplanes.
Findings
Loss performance depends on waveguide parameters and launch conditions.
Design rules for bends and crossings improve loss performance.
Optimized waveguides enable >=40 Gb/s data transmission.
Abstract
Optical interconnects play a key role in the implementation of high-speed short-reach communication links within high-performance electronic systems. Multimode polymer waveguides in particular are strong candidates for use in passive optical backplanes as they can be cost-effectively integrated onto standard PCBs. Various optical backplanes using this technology and featuring a large number of multimode polymer waveguide components have been recently demonstrated. The optimisation of the loss performance of these complex waveguide layouts becomes particularly important at high data rates (>=25 Gb/s) due to the associated stringent power budget requirements. Moreover, launch conditions have to be carefully considered in such systems due to the highly-multimoded nature of this waveguide technology. In this paper therefore, we present thorough loss and bandwidth studies on siloxane-based…
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Taxonomy
TopicsPhotonic and Optical Devices · Semiconductor Lasers and Optical Devices · Advanced Photonic Communication Systems
