Title :
Polarization-independent, thickness-insensitive, and refractive-index-difference-independent broad-band fluorinated polyimide waveguide coupler
Author :
Chen, Baoxue ; Zhou, Jianzhong ; Zhao, Dexin ; Jia, Hongbo ; Yuan, Yifang ; Iso, Mamoru
Author_Institution :
Coll. of Opt. & Electron Eng., Univ. of Shanghai for Sci. & Technol., China
Abstract :
A statistically optimized design method is proposed for the construction of polarization-independent, thickness-insensitive, and refractive-index-difference-independent broad-band waveguide couplers. Using this method, a fluorinated polyimide waveguide 3-dB coupler for a 1490-1610-nm operation is designed through optimization of the polarization, variation in thickness of the waveguide core, and variation in refractive-index difference of the waveguide core and cladding. The performance of the design is verified through simulation based on the three-dimensional beam-propagation method (3-D-BPM). The two orthogonal polarizations of the final design have a coupling ratio of (50±2.0)% for a bandwidth of 120 nm, a thickness fluctuation of 7-8 μm, and a refractive-index-difference fluctuation of 0.24-0.30%.
Keywords :
birefringence; light polarisation; optical communication equipment; optical couplers; optical design techniques; optical fabrication; optical polymers; optimisation; refractive index; coupling ratio; polarization optimization; polarization-independent broad-band fluorinated polymide waveguide coupler; refractive-index-difference fluctuation; refractive-index-difference-independent broad-band fluorinated polymide waveguide coupler; statistically optimized design; thickness fluctuation; thickness-insensitive broad-band fluorinated polymide waveguide coupler; three-dimensional beam-propagation method; waveguide cladding; waveguide core; Fluctuations; Optical devices; Optical materials; Optical polarization; Optical polymers; Optical refraction; Optical variables control; Optical waveguides; Polyimides; Substrates; Fluorinated polyimide; optical device; optical waveguides; polarization independent; polymer materials; refractive index difference independent; thickness insensitive;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2004.833783