Title :
Novel waveguide structures for enhanced fiber grating devices
Author :
Eggleton, Benjamin J. ; Ahuja, Ashish K. ; Feder, Kenneth S. ; Headley, Cliff ; Kerbage, Charles ; Mermelstein, Marc D. ; Rogers, John A. ; Steinvurzel, Paul ; Westbrook, Paul S. ; Windeler, Robert S.
Author_Institution :
Opt. Fiber Devices, Lucent Technol., Murray Hill, NJ, USA
Abstract :
An emerging class of fiber waveguide structures is being used to increase the functionality of fiber gratings, enabling new devices critical to the performance of next generation light-wave communications systems. These devices rely on advances in the fabrication of optical fiber waveguides, which go beyond the conventional doped silica design and fall into two general categories: 1) local modifications to the waveguide after fabrication and 2) fibers drawn with modified claddings that include nonsilica regions throughout their length. This paper provides a comprehensive review of emerging fiber waveguide structures that enhance the functionality of optical fiber grating devices. Two examples of technologies that fall into the first category are thin metal films deposited onto the cladding surface, which can be used for thermal tuning and infusion of nonsilica materials into the air regions, which change the waveguide structure and can provide enhanced tunability. The second category is typified by air-silica microstructured optical fibers, which contain air-voids that run along the length of the fiber. These fibers have unique cladding mode properties that can be exploited in fiber grating based devices
Keywords :
Bragg gratings; diffraction gratings; metallic thin films; optical communication equipment; optical fibre cladding; optical fibre fabrication; optical tuning; air-silica microstructured optical fibres; air-voids; cladding mode properties; cladding surface; enhanced fiber grating devices; enhanced tunability; fiber grating based devices; fiber gratings; fiber waveguide structures; functionality; infusion; local modifications; modified claddings; next generation light-wave communications systems; nonsilica materials; nonsilica regions; optical fiber grating devices; optical fiber waveguide fabrication; review; thermal tuning; thin metal film deposition; waveguide structures; Fiber gratings; Optical design; Optical device fabrication; Optical fiber communication; Optical fiber devices; Optical fibers; Optical films; Optical waveguides; Silicon compounds; Surface waves;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/2944.962265