Title :
Dual-Porous Fiber-Based Low Loss Broadband Terahertz Polarization Splitter
Author :
Shanshan Li ; Hao Zhang ; Jinjun Bai ; Weiwei Liu ; Ziwei Jiang ; Shengjiang Chang
Author_Institution :
Inst. of Modern Opt., Nankai Univ., Tianjin, China
Abstract :
A low loss broadband terahertz (THz) polarization splitter with a compact and simple structure has been proposed, which is based on the mode coupling between two porous fibers with orthogonally oriented cross section microstructures. The dispersion curves of the porous fibers are adjusted by the index converse matching coupling method. An interlacing stacking technique using polymer tubes and rods is presented for the fabrication of the proposed high-birefringence porous fiber. The characteristics of single porous fibers have been analyzed in detail. In addition, the dual-porous fiber-based polarization splitter has such desirable merits as ultrashort splitting length, low loss, and broad operation band. Compared with other dual-core PCF polarization splitters, this scheme possesses simpler structure, ease of fabrication, and better practical feasibility. This letter would be also of significance for the design of related broadband operation THz devices.
Keywords :
birefringence; optical beam splitters; optical design techniques; optical fibre dispersion; optical fibre fabrication; optical fibre polarisation; optical polarisers; optical polymers; terahertz wave devices; broad operation band; broadband operation THz device design; compact structure; dispersion curves; dual-core PCF polarization splitter; dual-porous fiber-based low loss broadband terahertz polarization splitter; high-birefringence porous fiber fabrication; index converse matching coupling method; interlacing stacking technique; mode coupling; orthogonally oriented cross section microstructures; polymer rods; polymer tubes; practical feasibility; simple structure; single porous fiber characteristics; ultrashort splitting length; Couplings; Materials; Optical fiber communication; Optical fiber couplers; Optical fiber devices; Optical fiber dispersion; Optical fiber polarization; Polarization splitter; porous fiber; terahertz;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2014.2326178