Title :
The benefits of ultrashort optical pulses in optically interconnected systems
Author :
Keeler, Gordon A. ; Nelson, Bianca E. ; Agarwal, Diwakar ; Debaes, Christof ; Helman, Noah C. ; Bhatnagar, Aparna ; Miller, David A B
Author_Institution :
Dept. of Appl. Phys. & Electr. Eng., Stanford Univ., CA, USA
Abstract :
Many properties of an optically interconnected system can be improved through the use of a modelocked laser. The short pulse duration, high peak power, wide spectral bandwidth, and low timing jitter of such a laser lead to these benefits. Timing advantages include simplified synchronization across large chip areas, receiver latency reduction, and data resynchronization. Lower power dissipation may be achieved through improved receiver sensitivity. Additional applications of short optical pulses include time-division multiplexing, single-source wavelength-division multiplexing, and precise time-domain testing of circuits. Several of these concepts were investigated using a high-speed chip-to-chip optical interconnect demonstration link. The link employs a modelocked laser and surface-normal optoelectronic modulators that were flip-chip bonded to silicon CMOS circuits. This paper outlines experiments that were performed on or simulated for the link, and discusses the important benefits of ultrashort optical pulses for optical interconnection.
Keywords :
CMOS integrated circuits; flip-chip devices; high-speed optical techniques; integrated optoelectronics; laser mode locking; optical interconnections; synchronisation; time division multiplexing; time-domain analysis; timing jitter; wavelength division multiplexing; Si; data resynchronization; flip-chip bonded surface-normal optoelectronic modulators; high peak power; high-speed chip-to-chip optical interconnect demonstration link; large chip areas; low timing jitter; lower power dissipation; modelocked laser; optically interconnected systems; precise time-domain testing; receiver latency reduction; receiver sensitivity; short optical pulses; short pulse duration; silicon CMOS circuits; simplified synchronization; single-source wavelength-division multiplexing; time-division multiplexing; ultrashort optical pulses; wide spectral bandwidth; Circuit testing; High speed optical techniques; Interconnected systems; Laser modes; Optical interconnections; Optical pulses; Optical receivers; Optical sensors; Power system modeling; Wavelength division multiplexing;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2003.813317