Title :
High frequency electrical circuits on a planar lightwave circuit platform
Author :
Mino, S. ; Ohyama, T. ; Hashimoto, T. ; Akahori, Y. ; Yoshino, K. ; Yamada, Y. ; Kato, K. ; Yasu, M. ; Moriwaki, K.
Author_Institution :
NTT Opto-Electron. Labs., Ibaraki, Japan
fDate :
5/1/1996 12:00:00 AM
Abstract :
We investigated the propagation losses and the characteristic impedances ZL of coplanar waveguides (CPWs) and microstrip lines (MSLs) on a planar lightwave circuit (PLC)-platform formed on a silica/silicon substrate. The loss of the CPWs was 2.7 dB/cm at 10 GHz on the PLC-platform with 30 μm thick silica layer. Thus, a cm-order circuit of this CPW is difficult to fabricate in the 10 Gb/s module. This is because the silicon substrate has a large loss tangent (tan δ). On the other hand, the loss of the MSLs, where a ground plane shielded the high loss silicon substrate, could be improved to 0.9 dB/cm at 10 GHz with 30 μm thick polyimide. These lower loss MSLs on a PLC-platform can be applied to module operation at 10 Gb/s. Furthermore they have the advantage that they are suitable for application to array device circuits or circuits in a module where several devices are integrated because unlike CPWs the ground planes are not divided by signal lines or DC bias lines. The structure of CPWs and MSLs on a PLC-platform with a ZL of 50 Ω was also studied in detail
Keywords :
coplanar waveguides; electric impedance; high-frequency effects; integrated optoelectronics; microstrip lines; optical information processing; optical losses; optical planar waveguides; optical waveguide components; substrates; μm thick polyimide; 10 GHz; 10 Gbit/s; 30 mum; DC bias lines; Gb/s module; SiO2-Si; array device circuits; characteristic impedances; cm-order circuit; coplanar waveguides; ground plane shielded; high frequency electrical circuits; high loss silicon substrate; large loss tangent; microstrip lines; module operation; planar lightwave circuit; planar lightwave circuit platform; propagation losses; signal lines; silica/silicon substrate; silicon substrate; thick silica layer; Circuits; Coplanar waveguides; Dielectric substrates; Frequency; Impedance; Optical signal processing; Optical waveguides; Programmable control; Propagation losses; Silicon compounds;
Journal_Title :
Lightwave Technology, Journal of