Title :
High-bandwidth graded-index polymer optical fiber enabling power penalty-free gigabit data transmission
Author :
Ishigure, Takaaki ; Makino, Kenji ; Tanaka, Sho ; Koike, Yasuhiro
Author_Institution :
Fac. of Sci. & Technol., Keio Univ., Yokohama, Japan
Abstract :
A relation between the -3 dB bandwidths of graded-index plastic optical fibers (GI POFs) and the total power penalty of 50-m GI POF links is investigated in detail. The bandwidth of the GI POF is deliberately varied by controlling the index profile. It is theoretically and experimentally confirmed that sufficiently high bandwidth on the order of gigahertz is necessary for the GI POF, even for several hundreds of megabit per second (Mb/s) data rate, in order to achieve the power penalty free in the bit error rate performance of the link. In the case of silica-based multimode fiber links, it has been reported that the launch condition strongly affects the bit error rate performances; hence, a special launching technology for the silica-based multimode fiber is developed to achieve a 1-Gb/s transmission in the gigabit Ethernet protocol. In this paper, it is also found that the power penalty-free state is realized in the GI POF link, which is independent of the launch condition, when a GI POF with a nearly ideal index profile is used. The GI POF is a promising physical layer for realizing stable, high-speed and low-cost data-com networks.
Keywords :
gradient index optics; optical fibre LAN; optical fibre dispersion; optical polymers; refractive index; Ethernet protocol; bit error rate performances; graded-index plastic optical fibers; high-bandwidth fiber; high-speed low-cost networks; intersymbol interference; launch condition; modal dispersion; plastic optical fiber links; power penalty-free gigabit data transmission; refractive index profile; silica-based multimode fiber; total power penalty; Bandwidth; Bit error rate; Data communication; Ethernet networks; Optical fiber LAN; Optical fibers; Optical polymers; Plastics; Protocols; Vertical cavity surface emitting lasers;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2003.817711