DocumentCode :
1343009
Title :
Optical technology for energy efficient I/O in high performance computing
Author :
Young, Ian A. ; Mohammed, Edris M. ; Liao, Jason T S ; Kern, Alexandra M. ; Palermo, Samuel ; Block, Bruce A. ; Reshotko, Miriam R. ; Chang, Peter L D
Volume :
48
Issue :
10
fYear :
2010
fDate :
10/1/2010 12:00:00 AM
Firstpage :
184
Lastpage :
191
Abstract :
Future high-performance computing systems will require optical I/O to achieve their aggressive bandwidth requirements of multiple terabytes per second with energy efficiency better than 1 pJ/b. Near-term optical I/O solutions will integrate optical and electrical components in the package, but longer-term solutions will integrate photonic elements directly into the CMOS chip to further improve bandwidth and energy efficiency. The presented near-term optical I/O uses a customized package to assemble CMOS integrated transceiver circuits, discrete VCSEL/detector arrays, and polymer waveguides. Circuit simulations predict this architecture will achieve energy efficiency better than 1 pJ/b at the 16 nm CMOS technology node. Monolithic photonic CMOS process technology enables higher bandwidth and improved energy efficiency for chip-to-chip optical I/O through integration of electro-optical polymer based modulators, silicon nitride waveguides, and polycrystalline germanium (Ge) detectors into a CMOS logic process. Experimental results for the photonic CMOS ring resonator (RR) modulators and Ge detectors demonstrate performance at up to 40 Gb/s and analysis predicts that photonic CMOS will eventually enable energy efficiency of 0.3 pJ/b with 16 nm CMOS. Optical interconnect technologies with multilane communication or wavelength-division multiplexing will further increase bandwidth to provide the multiple-terabyte-per-second optical interconnect solution that enables scaling of high-performance computing into and beyond the tera-scale era.
Keywords :
CMOS integrated circuits; bandwidth allocation; elemental semiconductors; energy conservation; germanium; logic circuits; optical fibre networks; optical interconnections; optical modulation; optical resonators; polymers; silicon compounds; transceivers; wavelength division multiplexing; CMOS integrated transceiver circuits; CMOS logic process; SiN; VCSEL; bandwidth requirements; circuit simulations; detector arrays; electro-optical polymer based modulators; energy efficiency; high performance computing systems; monolithic photonic CMOS process technology; multilane communication; multiple-terabyte-per-second optical interconnect solution; near term optical I/O solutions; optical technology; photonic CMOS ring resonator modulators; photonic elements; polycrystalline germanium; polymer waveguides; silicon nitride waveguides; wavelength division multiplexing; CMOS integrated circuits; Integrated optics; Optical fiber communication; Optical receivers; Optical transmitters; Optical waveguides; Vertical cavity surface emitting lasers;
fLanguage :
English
Journal_Title :
Communications Magazine, IEEE
Publisher :
ieee
ISSN :
0163-6804
Type :
jour
DOI :
10.1109/MCOM.2010.5594695
Filename :
5594695
Link To Document :
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