Title :
Pressure-dependent Sellmeier coefficients and material dispersions for silica fiber glass
Author :
Ghosh, Gorachand ; Yajima, Hiroyoshi
Author_Institution :
Femtosecond Technol. Res. Assoc., Electrotech. Lab., Tsukuba, Japan
fDate :
11/1/1998 12:00:00 AM
Abstract :
The pressure-dependent Sellmeier coefficients are essential to characterize the optical design parameters for the optical fiber communication systems under deep sea environmental conditions. These coefficients are calculated for densified silica glass for the first time to compute the pressure dependence of material dispersion at any wavelength from the ultraviolet (UV) to 1.71 μm. The zero dispersion wavelength λ0 (1.2725 μm at 0.1 106 N m -2) varies linearly with pressure, and dλ0/dP is 0.0027 nm/(106 N m-2). The calculated value is approximately one-third of the experimental value of 0.0076 nm/(106 N m-2) for a germanium-doped dispersion shifted fiber having λ0=1.5484 μm and -0.0070 nm/(106 N m-2) for a pure silica-core fiber cable having λ0 =1.2860 μm. Since, the refractive indexes are increased with pressure, the negative value of shift of the zero-dispersion wavelength is erroneous. The explanations are due to Ge-doping in silica glass, a possible temperature fluctuation of 0.16°C in the pressure-dependent measurement system of the zero dispersion wavelength and different experimental conditions of the silica glass and the optical fibers. This anomaly can also be attributed to the internal strain development at the core-cladding and fiber-jacketing boundaries due to pressure, which shows a larger experimental value. It accounts for the experimental values satisfactorily
Keywords :
optical cables; optical fibre cladding; optical fibre dispersion; optical fibre testing; refractive index; silicon compounds; 1.2725 mum; 1.2860 mum; 1.5484 mum; Ge-doped dispersion shifted fiber; Ge-doping; GeO2-SiO2; deep sea environmental conditions; densified silica glass; fiber-jacketing boundaries; fibre core-cladding boundary; germanium-doped dispersion shifted fiber; internal strain development; material dispersion; material dispersions; negative value; optical design parameters; optical fiber communication systems; pressure-dependent Sellmeier coefficients; pressure-dependent measurement system; pure silica-core fiber cable; refractive indexes; silica fiber glass; temperature fluctuation; zero dispersion wavelength; zero-dispersion wavelength; Fluctuations; Glass; Ocean temperature; Optical design; Optical fiber cables; Optical fiber communication; Optical fiber dispersion; Optical materials; Refractive index; Silicon compounds;
Journal_Title :
Lightwave Technology, Journal of