Title :
120 Gb/s VCSEL-based parallel optical link and custom 120 Gb/s testing station
Author :
Kuchta, Daniel ; Kwark, Young ; Schuster, Christian ; Baks, Christian ; Haymes, Chuck ; Schaub, Jeremy ; Pepejugoski, P. ; Shan, Lei ; John, Richard ; Kucharski, Daniel ; Rogers, Dennis ; Ritter, Mark ; Jewell, Jack ; Graham, Luke ; Schrodinger, Karl ; Sc
Author_Institution :
IBM T. J. Watson Res. Center, Yorktown Heights, NY, USA
Abstract :
A 120 Gb/s optical link (12 channels at 10 Gb/s/ch) has been demonstrated. The link operated at a BER of less than 10-12 with all channels operating and with a total fiber length of 316 m, which comprises 300 m of next generation (OM-3) multimode fiber (MMF) plus 16 m of standard grade MMF. This is the first time that a parallel link with this bandwidth at this per-channel rate has ever been demonstrated. For the transmitter, a SiGe laser driver was combined with a GaAs VCSEL array. For the receiver, the signal from a GaAs photodiode array was amplified by a 12 channel SiGe receiver IC. Key to the demonstration is the use of several custom testing tools, most notably a 12-channel pattern generator. The package is very similar to the commercial parallel modules that are available today, but the per-channel bit rate is three times higher than for the commercial modules. The new modules demonstrate the possibility of extending the parallel optical module technology that is available today into a distance× bandwidth regime that is unattainable for copper cables.
Keywords :
driver circuits; error statistics; modules; optical fibre communication; optical interconnections; optical receivers; optical testing; optical transmitters; p-i-n photodiodes; semiconductor laser arrays; surface emitting lasers; telecommunication equipment testing; 10 Gbit/s; 120 Gbit/s; 16 m; 316 m; BER; GaAs; MMF; OM-3 multimode fiber; PIN photodiode array; SiGe; VCSEL array; parallel optical interconnects; parallel optical link; parallel optical module technology; pattern generator; receiver photodiode array; testing station; total fiber length; transmitter laser driver; Bandwidth; Bit error rate; Fiber lasers; Gallium arsenide; Germanium silicon alloys; Optical fiber communication; Optical fiber testing; Optical transmitters; Silicon germanium; Vertical cavity surface emitting lasers;
Conference_Titel :
Electronic Components and Technology Conference, 2004. Proceedings. 54th
Print_ISBN :
0-7803-8365-6
DOI :
10.1109/ECTC.2004.1319462