Claims
- 1. A virtual distributed optoelectronic crossbar network comprising
a plurality of processor nodes; a plurality of optical paths; wherein each of the processor nodes includes a plurality of vertical cavity surface emitting laser diodes; one or more photodetectors; and a resonant cavity waveguide grating coupler positioned to couple light from the plurality of optical paths into the one or more photodetectors, and to couple light from the plurality of vertical cavity surface emitting laser diodes into the plurality of optical paths.
- 2. The virtual distributed optoelectronic crossbar network of claim 1, further including a network controller communicating with each of the plurality of processor nodes, and further wherein each of the plurality of processor nodes includes
an address decoder which communicates with the network controller, and which enables ones of the plurality of vertical cavity surface emitting laser diodes in response to addresses from the network controller; wherein each of the plurality of vertical cavity surface emitting laser diodes is coupled by the resonant cavity waveguide grating coupler to a different one of plurality of optical paths; and a single photodetector is coupled to an assigned optical path.
- 3. The virtual distributed optoelectronic crossbar network of claim 1, further wherein for each of the plurality of processor nodes
each of the plurality of vertical cavity surface emitting laser diodes is coupled by the resonant cavity waveguide grating coupler to a different one of plurality of optical paths; a first of the one or more photodetectors is coupled to an assigned optical path; and others of the one or more photodetectors are coupled to a different one of the plurality of optical paths and detect traffic on the assigned optical path.
- 4. The virtual distributed optoelectronic crossbar network of claim 1, wherein
the plurality of optical paths are located in a single physical medium; for each of the plurality of processor nodes each of the plurality of vertical cavity surface emitting laser diodes operate at different wavelengths; and the photodetectors are resonance cavity detectors.
- 5. The virtual distributed optoelectronic crossbar network of claim 4, wherein each of the plurality of processor nodes further includes
additional pluralities of vertical cavity surface emitting laser diodes, wherein each of the plurality of vertical cavity surface emitting laser diodes in the additional groups operate at different wavelengths; and additional pluralities of photodetectors, wherein each photodetector in the additional pluralities of photodetectors groups is a resonant cavity enhanced photodetector responsive to a different wavelength.
- 6. The virtual distributed optoelectronic crossbar network of claims 1, 2, 3, 4 or 5, wherein the optical paths are optical fibers.
- 7. The virtual distributed optoelectronic crossbar network of claims 1, 2, 3, 4 or 5, wherein the optical paths are free space.
- 8. The virtual distributed optoelectronic crossbar network of claim 4 wherein the optical paths are located in a single optical fiber.
- 9. The virtual distributed optoelectronic crossbar network of claim 2, wherein for each node, only one vertical cavity surface emitting laser diode operates at any point in time.
- 10. The virtual distributed optoelectronic crossbar network of claim 2 wherein multiplexing of optical signals to the processor nodes is performed through independent optical paths, for independent processors nodes.
- 11. The virtual distributed optoelectronic crossbar network of claims 1, 2, 3, 4, or 5, wherein the plurality of optical paths is bi-directional.
- 12. The virtual distributed optoelectronic crossbar network of claims 1, 2, 3, 4, or 5, wherein the plurality of optical paths are provided in waveguides.
- 13. A virtual distributed optoelectronic crossbar backplane comprising
a plurality of backplane nodes; a plurality of optical paths; wherein each of the plurality of backplane nodes includes a plurality of vertical cavity surface emitting laser diodes; a plurality of photodetectors; an electrical connector coupled to the plurality of vertical cavity surface emitting laser diodes and the plurality of photodetectors; circuitry coupled to drive the plurality of vertical cavity surface emitting laser diodes and responsive to signals from the electrical connector, and to provide signals to the electrical connector in response to the plurality of photodetectors; and a resonant cavity waveguide grating coupler spanning the plurality of backplane nodes and providing a plurality of optical paths, wherein the resonant cavity waveguide grating coupler is positioned to couple light from the plurality of optical paths into the photodetectors of the plurality of back plane nodes, and to couple light from the vertical cavity surface emitting laser diodes of the plurality of backplane nodes into the plurality of optical paths.
- 14. The virtual distributed optoelectronic crossbar backplane of claim 13, wherein the resonant cavity waveguide grating coupler includes optical fibers.
RELATED APPLICATION
[0001] The present application claims priority under 35 U.S.C. §119(e) from provisional application No. 60/207,498, filed May 26, 2000.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60207498 |
May 2000 |
US |