Title :
Polarization-Maintaining Large-Mode-Area Microstructured-Core Optical Fibers
Author_Institution :
Dept. of Opt. Eng., Jiangsu Univ., Zhenjiang
fDate :
7/1/2008 12:00:00 AM
Abstract :
A novel polarization-maintaining large-mode-area optical fiber is proposed in this paper. Anisotropic microstructured core in the fiber is realized by the inclusion of air holes arranged in rectangular lattice. An updoped silica background is introduced to compensate the reduction of the effective core index induced by the air holes. Numerical investigation demonstrated high birefringence on the order of 10-3 and hexagonal profile mode fields with mode areas as large as of 161.2 and 118.0 mum2, at the wavelength of 1.55 mum, for x- and y-polarized states, respectively, can be achieved in one such fiber. In contrast to polarization-maintaining optical fibers reported previously, the birefringence of the fiber is increasing with the increase of frequency. We also proposed a novel kind of single-polarization single-mode optical fibers based on the design, and one such fiber presents mode area as large as 119 mum2 and operating wavelength as broad as 127 nm with confinement loss below 0.1 dB/km.
Keywords :
birefringence; doping profiles; holey fibres; optical design techniques; optical fibre losses; optical fibre polarisation; optical lattices; optical materials; photonic crystals; silicon compounds; SiO2; air holes; birefringence; confinement loss; effective core index; hexagonal profile mode field; microstructured-core optical fibers; operating wavelength; photonic crystal fibre; polarization-maintaining large-mode-area; rectangular lattice; single-polarization single-mode optical fibers; updoped silica background; wavelength 1.55 mum; Anisotropic magnetoresistance; Birefringence; Optical fiber communication; Optical fiber devices; Optical fiber losses; Optical fiber polarization; Optical fiber sensors; Optical fibers; Photonic crystal fibers; Silicon compounds; Large mode area; photonic crystal fiber; polarization maintaining; single-polarization single mode;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2007.912054