Title :
Cost-effective 10 Gb/s polymer-based chip-to-chip optical interconnect
Author :
Hashim, Aniqah ; Bamiedakis, N. ; Beals, J. ; Penty, Richard V. ; White, Ian H.
Author_Institution :
Electr. Eng. Div., Univ. of Cambridge, Cambridge, UK
fDate :
6/1/2012 12:00:00 AM
Abstract :
Board-level optical links are an attractive alternative to their electrical counterparts as they provide higher bandwidth and lower power consumption at high data rates. However, on-board optical technology has to be cost-effective to be commercially deployed. This study presents a chip-to-chip optical interconnect formed on an optoelectronic printed circuit board that uses a simple optical coupling scheme, cost-effective materials and is compatible with well-established manufacturing processes common to the electronics industry. Details of the link architecture, modelling studies of the link´s frequency response, characterisation of optical coupling efficiencies and dynamic performance studies of this proof-of-concept chip-to-chip optical interconnect are reported. The fully assembled link exhibits a -3 dBe bandwidth of 9 GHz and -3 dBo tolerances to transverse component misalignments of ±25 and ±37 mm at the input and output waveguide interfaces, respectively. The link has a total insertion loss of 6 dBo and achieves error-free transmission at a 10 Gb/s data rate with a power margin of 11.6 dBo for a bit-error-rate of 10-12. The proposed architecture demonstrates an integration approach for high-speed board-level chip-to-chip optical links that emphasises component simplicity and manufacturability crucial to the migration of such technology into real-world commercial systems.
Keywords :
error statistics; integrated optoelectronics; optical interconnections; optical losses; optical polymers; printed circuits; bandwidth 9 GHz; bit rate 10 Gbit/s; bit-error-rate; high-speed board-level chip-to-chip optical links; on-board optical technology; optical coupling; optoelectronic printed circuit board; polymer-based chip-to-chip optical interconnect; power consumption; total insertion loss;
Journal_Title :
Optoelectronics, IET
DOI :
10.1049/iet-opt.2012.0003