Paper
23 August 2002 High-order-mode fiber-based dispersion management technology yields full-slope match, high power tolerance, and low loss
Uri Levy, Kejian Wang
Author Affiliations +
Proceedings Volume 4906, Optical Components and Transmission Systems; (2002) https://doi.org/10.1117/12.480586
Event: Asia-Pacific Optical and Wireless Communications 2002, 2002, Shanghai, China
Abstract
The evolving technology of high-order-mode dispersion management is discussed. Selected high-order modes of specially designed fibers can have high dispersion ofa few hundreds psec/nm*km, controlled dispersion-slope in the range of 1.5 to 10 psec/nm2*km, and large effective area of6O to 8Ojim2. Thus, the technology enables the construction of dispersion management devices with low-loss, accurate broadband dispersion compensation for a variety of transmission fibers, and low sensitivity to non-linear effects. Compared to standard fundamental-mode-based devices, the high-order-mode-based devices may have as much as 6 dB advantage in insertion loss and 6 to 13 dB advantage in power tolerance to non-linear effects. Specific high power tests show a 13 dB higher threshold to stimulated Brillouin scattering and 6 to 10 dB advantage in sensitivity to self-phase modulation. Line amplifiers designed and built around these high-order-mode devices may have an advantage of I dB or more in Noise Figure, thereby enabling significantly longer reach ofoptical links.
© (2002) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Uri Levy and Kejian Wang "High-order-mode fiber-based dispersion management technology yields full-slope match, high power tolerance, and low loss", Proc. SPIE 4906, Optical Components and Transmission Systems, (23 August 2002); https://doi.org/10.1117/12.480586
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KEYWORDS
Digital micromirror devices

Optical fibers

Optical amplifiers

Dispersion

Tolerancing

Scanning probe microscopy

Signal to noise ratio

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