Title :
Mode mixing and polarization scrambling microparticles in polymeric resin filled optical couplers
Author :
Grimes, Gary J. ; Blyler, Lee L., Jr.
Author_Institution :
AT&T Bell Lab., Denver, CO, USA
fDate :
5/1/1993 12:00:00 AM
Abstract :
The fiber-to-fiber uniformity, optical loss, and size of polymeric multimode combiners and splitters was enhanced by the addition of mode mixing microspheres when low numerical aperture (NA) sources were used. Mixing rod type resin filled polymeric optical couplers could be significantly shortened when used with small beam divergence angle lasers and other small NA sources. The small NA beam divergence angle causes the energy to remain in low-order modes for desired mixing lengths, causing fiber-to-fiber nonuniformity. A solution to this problem a mode mixing refractive microsphere technology, is presented. Results demonstrate that the use of the microspheres improved the performance of both optical splitters and combiners. Silica microparticles were suspended in the polymer mixing regions of the couplers. The shortened mixing lengths accomplished with the microparticles also makes it possible to use polymeric couplers with longer wavelengths of light where polymers are not as transparent
Keywords :
light polarisation; optical couplers; optical fibres; optical losses; optical switches; SiO2 particles; fiber-to-fiber uniformity; low numerical aperture sources; mode mixing microspheres; optical backplanes; optical loss; polarization scrambling microparticles; polymeric photonic switch; polymeric resin filled optical couplers; silica microparticles; size; Apertures; Fiber lasers; Laser beams; Optical fiber couplers; Optical fiber losses; Optical fiber polarization; Optical mixing; Optical polymers; Optical refraction; Resins;
Journal_Title :
Components, Hybrids, and Manufacturing Technology, IEEE Transactions on