Affiliation:
1. Acharya Prufulla Chandra College
Abstract
The Optical Fiber-based communication system has established its proficiency and inevitability towards regular progress and advancement worldwide. The most attractive wavelength for optical fiber communication is 1.55 μm, as it represents the lowest loss. The other challenging parameter ‘Material Dispersion’ gets reduced to ‘Zero’ at 1.27 μm wavelengths for conventional pure silica-based Optical Fiber. To improve the system towards a better unification between the loss and dispersion, the Dispersion Shifted Fiber (DSF) has been introduced. The Dispersion Flattened Fiber has introduced the concept of flat dispersion over a wide range of wavelengths. But the effective combination of the mechanisms to compensate for all the challenges is yet to be established properly. The said mechanisms are complex to design and implement. So, there is an immense scope to search for an alternative to get control over the loss and dispersion. At present, a fair number of material compositions of optical fiber are reported with different specifications. Our study on some of these fiber compositions has produced some interesting data towards the broader flatness and the minimum dispersion effect over a considerable range of wavelengths around the Zero Material Dispersion Wavelength (ZMDW). It helps to have more effective wavelength division Multiplexing (WDM). In this paper, we have studied different prospective options of optical fiber doping profiles to explore and propose an effective and optimized alternative among the available fiber profiles. We have studied the samples of pure SiO2 fibers along with B2O3 and GeO2 doped fibers and samples of Fluoride-based ABCY and ZBLAN glass Fibers to propose an effective combination of materials among the available options to get the optimized conjugation of loss and dispersion. Our report on the comparative study of different fiber materials has produced some effective results to have minimum material dispersion at the lowest loss wavelength to invite worldwide attention from system designers.
Publisher
Trans Tech Publications, Ltd.
Reference34 articles.
1. A. Ghatak and K. Thyagarajan, Introduction to Fiber Optics, Cambridge University Press, (1998).
2. T.Okoshi, Optical Fibers, Academic Press, New York, (1982).
3. S. Mitachi, Dispersion measurement on fluoride glasses and fibers, Journal of Lightwave Technology, 7 (8), (1989), 1256-1263.
4. Govind P. Agrawal, Nonlinear Fiber Optics, 3rd ed. Academic Press, San Diego, CA, USA, (2001).
5. T. Miyashita, T. Manabe, Infrared Optical Fibers, Microwave Theory and Techniques IEEE Transactions on, 30 (10), (1982). 1420-1438.
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