Title :
PCB-compatible optical interconnection using 45°-ended connection rods and via-holed waveguides
Author :
Rho, Byung Sup ; Kang, Saekyoung ; Cho, Han Seo ; Park, Hyo-Hoon ; Ha, Sang-Won ; Rhee, Byoung-Ho
Author_Institution :
Inf. & Commun. Univ., Daejeon, South Korea
Abstract :
In this paper, a new architecture for a chip-to-chip optical interconnection system is demonstrated that can be applied in a waveguide-embedded optical printed circuit board (PCB). The experiment used 45°-ended optical connection rods as a medium to guide light paths perpendicularly between vertical-cavity surface-emitting lasers (VCSELs), or photodiodes (PDs) and a waveguide. A polymer film of multimode waveguides with cores of 100×65 μm was sandwiched between conventional PCBs. Via holes were made with a diameter of about 140 μm by CO2-laser drilling through the PCB and the waveguide. Optical connection rods were made of a multimode silica fiber ribbon segment with a core diameter of 62.5 and 100 μm. One end of the fiber segment was cut 45° and the other end 90° by a mechanical polishing method. These fiber rods were inserted into the via holes formed in the PCB, adjusting the insertion depth to locate the 45° end of rods near the waveguide cores. From this interconnection system, a total coupling efficiency of about -8 dB was achieved between VCSELs and PDs through connection rods and a 2.5 Gb/s × 12-ch data link demonstrated through waveguides with a channel pitch of 250 μm in the optical PCB.
Keywords :
cutting; optical couplers; optical interconnections; optical waveguides; photodiodes; polishing; polymer films; printed circuits; surface emitting lasers; 100 mum; 2.5 Gbit/s; 45°-ended connection rods; 62.5 mum; 65 mum; PCB; channel pitch; chip-to-chip optical interconnection; coupling efficiency; cutting; mechanical polishing; multimode silica fiber ribbon segment; multimode waveguides; optical printed circuit board; photodiodes; polymer film; vertical-cavity surface-emitting lasers; via holes; Optical films; Optical interconnections; Optical polymers; Optical surface waves; Optical waveguides; Printed circuits; Surface emitting lasers; Surface waves; Vertical cavity surface emitting lasers; Waveguide lasers; Optical interconnection; PCB; optical connection rod; optical printed circuit board; waveguide;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2004.833533