Title :
A source-synchronous double-data-rate parallel optical transceiver IC
Author :
Gui, Ping ; Kiamilev, Fouad E. ; Wang, Xiaoqing ; MacFadden, Michael J. ; Wang, Xingle ; Waite, Nick ; Haney, Michael W. ; Kuznia, Charlie
Author_Institution :
Dept. of Electr. Eng., Southern Methodist Univ., Dallas, TX, USA
fDate :
7/1/2005 12:00:00 AM
Abstract :
Source-synchronous double-data-rate (DDR) signaling is widely used in electrical interconnects to eliminate clock recovery and to double communication bandwidth. This paper describes the design of a parallel optical transceiver integrated circuit (IC) that uses source-synchronous DDR optical signaling. On the transmit side, two 8-b electrical inputs are multiplexed, encoded, and sent over two high-speed optical links. On the receive side, the procedure is reversed to produce two 8-b electrical outputs. The proposed IC integrates analog vertical-cavity surface-emitting lasers (VCSELs), drivers and optical receivers with digital DDR multiplexing, serialization, and deserialization circuits. It was fabricated in a 0.5-/spl mu/m silicon-on-sapphire (SOS) complementary metal-oxide-semiconductor (CMOS) process. Linear arrays of quad VCSELs and photodetectors were attached to the proposed transceiver IC using flip-chip bonding. A free-space optical link system was constructed to demonstrate correct IC functionality. The test results show successful transceiver operation at a data rate of 500 Mb/s with a 250-MHz DDR clock, achieving a gigabit of aggregate bandwidth. While the proposed DDR scheme is well suited for low-skew fiber-ribbon, free-space, and waveguide optical links, it can also be extended to links with higher skew with the addition of skew-compensation circuitry. To the authors´ knowledge, this is the first demonstration of parallel optical transceivers that use source-synchronous DDR signaling.
Keywords :
driver circuits; integrated circuit design; optical links; optical receivers; surface emitting lasers; transceivers; 0.5 micron; CMOS; analog vertical-cavity surface-emitting lasers; complementary metal-oxide-semiconductor; deserialization circuits; digital DDR multiplexing; electrical interconnects; flip-chip bonding; free-space optical link system; optical receivers; photodetectors; serialization circuits; silicon-on-sapphire; source-synchronous DDR optical signaling; source-synchronous double-data-rate parallel optical transceiver IC; source-synchronous double-data-rate signaling; Bandwidth; Clocks; High speed optical techniques; Integrated optics; Optical fiber communication; Optical interconnections; Optical receivers; Photonic integrated circuits; Transceivers; Vertical cavity surface emitting lasers; Flip-chip; high-speed-interconnect; optical interconnects; optoelectronic-integrated circuits; source-synchronous signaling;
Journal_Title :
Very Large Scale Integration (VLSI) Systems, IEEE Transactions on
DOI :
10.1109/TVLSI.2005.850101