DocumentCode :
1204336
Title :
Structure-property relationship of fluorinated co-poly(arylene ether sulfide)s and co-poly(arylene ether sulfone)s for low-loss and low-birefringence waveguide devices
Author :
Jae-Wook Kang ; Jae-Pil Kim ; Jae-Suk Lee ; Jang-Joo Kim
Volume :
23
Issue :
1
fYear :
2005
Firstpage :
364
Lastpage :
373
Abstract :
Optical properties such as refractive index, birefringence, thermal stability, and optical loss of fluorinated co-poly(arylene ether sulfide)s and co-poly(arylene ether sulfone)s were investigated, and they are related to the molecular structure of the polymers. The refractive index of the optical polymers varies in the range of 1.51/spl sim/1.60, and its variation is well described by a Lorentz-Lorenz equation. Their birefringence varies between 0.0027/spl sim/0.0039 for the sulfides series and between 0.0009/spl sim/0.0025 for the sulfone series at a 1.55-/spl mu/m wavelength, respectively. The birefringence is analyzed based on the microscopic anisotropic ratio of the polarizability of the molecular repeating unit resulting in good linear relationship between them within the polymer groups. This result implies that the molecular calculation can be utilized to design polymers with low birefringence. The propagation losses of the optical polymers were 0.1/spl sim/0.3 and 0.2/spl sim/0.5 dB/cm at the wavelength of 1.3 and 1.55 /spl mu/m, respectively. The optical losses are inversely proportional to fluorine content. The polymers have good thermal stability upon long-term thermal stress at 100/spl deg/C for 1000 h and short-term thermal stress at 300/spl deg/C for 1 h.
Keywords :
birefringence; optical losses; optical polymers; optical waveguides; polarisability; refractive index; thermal stability; thermal stresses; Lorentz-Lorenz equation; anisotropic ratio; fluorinated copoly(arylene ether sulfide)s; fluorinated copoly(arylene ether sulfone)s; low-birefringence waveguide devices; low-loss waveguide devices; optical polymers; polarizability; polymer molecular structure; refractive index; thermal stability; thermal stress; Birefringence; Optical devices; Optical losses; Optical polymers; Optical refraction; Optical variables control; Optical waveguides; Refractive index; Thermal stability; Thermal stresses; Fluorinated poly(arylene ether sulfide)s; fluorinated poly(arylene ether sulfone)s; low-birefringence; low-loss; optical polymer waveguides; thermally stable;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2004.834980
Filename :
1377466
Link To Document :
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