Hostname: page-component-848d4c4894-wzw2p Total loading time: 0 Render date: 2024-05-18T20:37:07.238Z Has data issue: false hasContentIssue false

Applications of Organic and Inorganic Optical Thin Films in Telecommunications

Published online by Cambridge University Press:  21 March 2011

G. F. Lipscomb
Affiliation:
Lightwave Microsystems Corp. 2911 Zanker Rd. San Jose, CA 95134
J. Lam
Affiliation:
Lightwave Microsystems Corp. 2911 Zanker Rd. San Jose, CA 95134
M. Stiller
Affiliation:
Lightwave Microsystems Corp. 2911 Zanker Rd. San Jose, CA 95134
P. Schroeter
Affiliation:
Lightwave Microsystems Corp. 2911 Zanker Rd. San Jose, CA 95134
Get access

Extract

The demands of exponentially growing Internet traffic, coupled with the advent of Dense Wavelength Division Multiplexing (DWDM) fiber optic systems to meet those demands, have triggered a revolution in the telecommunications industry. In the three short years of deployment, DWDM performance has accelerated dramatically. Channel counts have grown from 4 to 80, with 170 announced, and channel spacings have shrunk from 400 GHz to 50 GHz. Practical systems that put 1 TeraBit/sec. of information on a fiber are now on the horizon. This dramatic increase has been built upon, and has driven, improvements in fiber optic component technology, which has in turn driven improvements in photonic materials. The next generation of systems for the “all optical network” will require higher performance components coupled with dramatically lower costs. One approach to achieve significantly lower costs per function is to employ Planar Lightwave Circuits (PLC) to integrate multiple optical functions on a single substrate leading to a single package. In this way multiple components can be fabricated and interconnected at once, significantly reducing both the manufacturing and the packaging/assembly costs. The manufacture of PLCs, however, places demanding requirements on materials, design and fabrication processes. Parameters such as index of refraction, absorption and birefringence must be tightly controlled. PLCs have been made using inorganic crystals, such as Lithium Niobate, oxide glasses or polymers on silicon substrates and semi-conductor materials, such as Indium Phosphide (InP). All except InP are commercially available. In this paper we give an overview of the applications of PLCs in DWDM fiber optic transmission systems and discuss how material's requirements flow down from end-use requirements. The specific example of the use of polymer based thermo-optic switches for reconfigurable Optical Add/Drop Multiplexer (OADM) applications is discussed.

Type
Research Article
Copyright
Copyright © Materials Research Society 1999

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

1 Smit, M.K., “New Focusing And Dispersive Planar Component Based On An Optical Phased Array,” Electronics Letters, 24. 385 (1988).Google Scholar
2 Takahashi, H., “Arrayed Waveguide Grating for Wavelength Division Multi/Demultiplexer with Nanometer Resolution,” Electronics Letters 26 87 (1990).Google Scholar
3 Dragonne, C., “Integrated optics NxN multiplexer on silicon,” IEEE Photonics Letters, 3 896 (1991).Google Scholar
4 Okamoto, K., Okuno, M., Himeno, A. and Ohmori, Y., “16 channel optical add/drop multiplexer consisting of arrayed waveguide gratings and double gate switches,” IEEE Photonics Letters 32 1471 (1996).Google Scholar
5 Beelen, G., Linders, P., Roeloffzen, C.G.H., Driessen, A., Diemeer, M.B.J., Leijtens, X.J.M., Bakker, A.F. and Krijger, A.G.T. de, “First polymer based reconfigurable add-drop multiplexer,” ECOC'99 Post Deadline Papers, p. 58.Google Scholar
6 Offrein, B.J., Bona, G.L., Germann, R., Horst, F. and Salamink, H.W.M., “Dynamic Gain Equalization in High Index Contrast SiON Technology,” ECOC'99 Post Deadline Papers, p. 6.Google Scholar
7 Sckerl, M.W., Guldberg-Kjaer, S. and Laurent-Lund, Chr., “Monolithic DWDM Multi- Channel Planar Waveguide Laser,” ECOC'99 Post Deadline Papers, p. 16.Google Scholar