Title :
Compact and low-loss arrayed waveguide grating module with tolerance-relaxed spot-size converter
Author :
Mizuno, T. ; Kitoh, T. ; Ishii, M. ; Inoue, Y. ; Saida, T. ; Itoh, M. ; Shibata, T. ; Hibino, Y.
Author_Institution :
NTT Photonics Labs., KanagawaNTT Corporation, Japan
Abstract :
A compact, low-loss arrayed waveguide grating (AWG) module was achieved by adopting a novel optical spot-size converter (SSC) to planar lightwave circuits (PLCs). The SSC is a laterally tapered waveguide that can be fabricated simply by the conventional fabrication process. The structure is composed of a core width converting region where the spot-size is converted efficiently, and a core width fine-tuning region where the cut-position tolerance is relaxed. We have applied this structure to a 1.5%-/spl Delta/ silica-based waveguides and reduced the single-mode fiber coupling loss to less than 0.5 dB/point. The SSC provides a large cut-position tolerance that enables angle polishing of the PLC endfaces to prevent reflection and low-loss connection of pigtail fibers. The center channel insertion loss of the AWG module was reduced from 4.2 to 2.2 dB, and the reflection was less than -60 dB.
Keywords :
arrayed waveguide gratings; optical fibre couplers; optical losses; optical planar waveguides; tolerance analysis; 2.2 dB; AWG module; angle polishing; center channel insertion loss; compact low-loss arrayed waveguide grating module; core width converting region; core width fine-tuning region; cut-position tolerance; laterally tapered waveguide; optical planar waveguides; optical spot-size converter; phased arrays; pigtail fiber low-loss connection; planar lightwave circuits; single-mode fiber coupling loss; tolerance-relaxed spot-size converter; transmittance spectra; Arrayed waveguide gratings; Circuits; Insertion loss; Optical arrays; Optical device fabrication; Optical planar waveguides; Optical reflection; Optical waveguides; Planar waveguides; Programmable control;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2002.806836