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1.
Opt Express ; 21(12): 14808-15, 2013 Jun 17.
Article in English | MEDLINE | ID: mdl-23787668

ABSTRACT

We present a new theoretical model for the broadband reflection spectra of etched FBGs which includes the effects of axial contraction and stress-induced index change. The reflection spectra of the etched FBGs with several different taper profiles are simulated based on the proposed model. In our observation, decaying exponential profile produces a broadband reflection spectrum with good uniformity over the range of 1540-1560 nm. An etched FBG with similar taper profile is fabricated and the experimental result shows good agreement with the theoretical model.


Subject(s)
Computer-Aided Design , Fiber Optic Technology/instrumentation , Models, Theoretical , Refractometry/instrumentation , Computer Simulation , Elastic Modulus , Equipment Design , Equipment Failure Analysis , Light , Scattering, Radiation
2.
Opt Express ; 21(3): 2551-62, 2013 Feb 11.
Article in English | MEDLINE | ID: mdl-23481713

ABSTRACT

When an optical fiber is dipped in an etching solution, the internal stress profile in the fiber varies with the fiber diameter. We observed a physical contraction as much as 0.2% in the fiber axial dimension when the fiber was reduced from its original diameter to ~6 µm through analysis using high resolution microscope images of the grating period of an etched FBG at different fiber diameters. This axial contraction is related to the varying axial stress profile in the fiber when the fiber diameter is reduced. On top of that, the refractive index of fiber core increases with reducing fiber diameter due to stress-optic effect. The calculated index increment is as much as 1.8 × 10(-3) at the center of fiber core after the diameter is reduced down to ~6 µm. In comparison with the conventional model that assumes constant grating period and neglects the variation in stress-induced index change in fiber core, our proposed model indicates a discrepancy as much as 3nm in Bragg wavelength at a fiber diameter of ~6 µm.


Subject(s)
Models, Theoretical , Optical Fibers , Computer Simulation , Computer-Aided Design , Elastic Modulus , Equipment Design , Equipment Failure Analysis , Stress, Mechanical
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