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Optical Interconnect Switch

Published online by Cambridge University Press:  21 February 2011

Paul R. Prucnal
Affiliation:
Princeton University, Department of Electrical Engineering, Engineering Quadrangle, Princeton, NJ 08544
Philippe A. Perrier
Affiliation:
Princeton University, Department of Electrical Engineering, Engineering Quadrangle, Princeton, NJ 08544
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Abstract

A novel photonic interconnect architecture is proposed which can provide extremely high dimensionality. The proposed architecture, which resembles a collapsed network, avoids the difficulties associated with the use of optical crosspoints. This is accomplished by providing a dedicated path for all input- and output-port connections on a common transmission medium. This eliminates the restrictions imposed by 2×2 switching elements in classical space-division switching architectures.

Type
Research Article
Copyright
Copyright © Materials Research Society 1990

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References

5. References

1 Keyes, R.W., “Physical limits on digital electronics,” Proceedings of the IEEE, Vol.63, No. 5, pp. 740767, 1975 Google Scholar
2 Goodman, J.W., Leonberger, F.J., Kung, S.Y., and Athale, R.A., “Optical interconnections for VLSI systems,” Proceedings of the IEEE, Vol.72, No. 7, pp. 850865, 1984 Google Scholar
3 S aleh, B., and Teich, M., Fundamentals of Photonics, Chapter 21, in pressGoogle Scholar
4 Su, S.F., Jou, L., and Lenart, J., “A review on classification of optical switching systems,” IEEE Communications Magazine, Vol.24, No. 5, pp. 5055, 1986 Google Scholar
5 Leonberger, F.J., “Progress in Ti:LiNbO3 and InP waveguide devices for signal-processing applications,” 4th International Conference on Integrated Optics and Optical Fiber Communication (Tokyo, Japan, June 27–30, 1983), Technical Digest, paper 30B2–1, pp. 240–241, 1983 Google Scholar
6 Granestrand, P., and Thylen, L., “Strictly nonblocking 8×8 integrated-optic switch matrix in Ti:LiNbO3,” Topical Meeting on Integrated and Guided-Wave Optics (Atlanta, GA, 2628 February 1986), Technical Digest, Paper WAA3, pp. 4–6, 1986 Google Scholar
7 Feng, T-Y., “A survey of interconnection networks,” Computer, Vol.14, No. 12, pp. 1227, 1981 Google Scholar
8 Alferness, R.C., “Recent advances in integrated optics,” Conference on Lasers and Electro-Optics (Baltimore, MA, 26 April- 1 May 1987), paper WQ1, pp. 198–200, 1987 Google Scholar
9 Smith, P.W., “On the physical limits of digital optical switching and logic elements,” The Bell System Technical Journal, Vol.61, No. 8, pp. 19751993, October 1982 Google Scholar
10 Hutcheson, L.D., “Integrated optics: evolution and prospects,” Optics News, Vol.14, No. 2, pp. 79, 1988 Google Scholar
11 Spanke, R.A., “Architectures for large nonblocking optical space switches,” IEEE Journal of Quantum Electronics, Vol. QE–22, No. 6, pp. 964967, 1986 Google Scholar
12 Milbrodt, M.A., Veselka, J.J., Bahadori, K., Chen, Y.C., Bogert, G.A., Coult, D.G., Holmes, R.J., Erickson, J.R., and Payne, W.A., “A tree-structured 4x4 switch array in lithium niobate with attached fibers and proton-exchange polarizers,” Topical Meeting on Integrated and Guided-Wave Optics (Santa Fe, NM, March 2830, 1988), Technical Digest, Paper MF9, 1988 Google Scholar
13 Fisher, A.D., and Lee, J.N., “The current status of two-dimensional spatial light modulator technology,” SPIE Vol 634: Optical and Hybrid Computing (Leesburg, VA, 2427 March 1986), pp. 352–371, 1986 Google Scholar
14 Sawchuck, A., and Jenkins, B.K., “Dynamic optical interconnections for parallel processors,” Proceedings of SPIE: Optical Computing (Los Angeles, CA, 23–24 January 1986), Vol. 625, pp. 143–153, 1986 Google Scholar
15 Prucnal, P.R., Santoro, M.A., and Fan, T.R., “Spread spectrum fiber-optic local area network using optical processing,” Journal of Lightwave Technology, Vol. LT–4, No. 5, pp. 547554, 1986 Google Scholar
16 Prucnal, P.R., Blumenthal, D.J., and Santoro, M.A., “12.5 Gbit/s fibre-optic network using all-optical processing,” Electronics Letters, Vol.23, No. 12, pp. 629630, 1987 Google Scholar
17 Kaminow, I.P., “Non-coherent photonic frequency-multiplexed access networks,” IEEE Network Magazine, Vol.3, No. 2, pp. 412, March 1989 Google Scholar
18 Linke, R., "Frequency division multiplexed optical networks using heterodyne detection,” IEEE Network Magazine, Vol.3, No. 2, pp. 412, March 1989, pp. 13–20Google Scholar
19 Prucnal, P.R., Elby, S.T., and Nichols, K.B., “Optical transmitter for fiber-optic interconnects,” Optical Engineering, in pressGoogle Scholar
20 Sharfin, W., and Dagenais, M., “The role of nonlinear diode laser amplifiers in optical processors and interconnects,” Optical and Quantum Electronics, Vol.19, pp. 547566, 1987 Google Scholar
21 Dolfi, D.W., Nazarathy, M., and Jungerman, R.L., “40 GHz electro-optic modulator with 7.5 V drive voltage,” Electronics Letters, Vol.24, No. 9, pp. 528529, 1988 Google Scholar
22 Oshima, S., Ito, K., Donuma, K.-I., Sugiyama, H., and Fujii, Y., “Small loss-deviation tapered fiber star coupler for LAN,” IEEE Journal of Lightwave Technology, Vol. LT–3, No. 3, pp. 556560A, June 1985 Google Scholar