Claims
- 1. An apparatus for a wave division multiplexing-type optical communication system comprising:
at least one of an integrated receiver and an integrated transmitter wherein the integrated receiver has an optical input port, and a plurality of electrical outputs carried by a first substrate; an optical element carried in the receiver module by the substrate with a multiple wavelength optical input coupled to the input port and a plurality of wavelength separated optical outputs, a plurality of optical-to-electrical converters carried in the receiver module by the substrate with each converter coupled to a respective optical output; and a plurality of limiting amplifiers with each amplifier coupled to a respective converter and a respective electrical output with an output from each amplifier corresponding to a member of the plurality of optical outputs, and wherein the transmitter has a plurality of electrical inputs and an optical output port carried by a second substrate; a plurality of electrical-to-optical converters carried by the second substrate with each member of the plurality coupled to one of the electrical inputs; a many-to-one optical element with a plurality of inputs carried by the second substrate wherein each member of the plurality is coupled to a respective one of the electrical-to-optical converters with a multiple wavelength optical output coupled to the optical output port.
- 2. An apparatus as in claim 1 wherein the receiver's optical element comprises an optical wavelength demultiplexer and the optical outputs are coupled to respective waveguides integrally formed on the first substrate.
- 3. An apparatus as in claim 1 wherein the receiver's element, the converters, and the limiting amplifiers are integrally formed on the first substrate.
- 4. An apparatus as in claim 3 wherein the module exhibits K electrical outputs wherein K corresponds to the number of optical outputs from the receiver's element with the K optical outputs coupled to the respective optical-to-electrical converter via a respective waveguide carried by the first substrate.
- 5. An apparatus as in claim 1 wherein each of the limiting amplifiers includes a current-to-voltage input amplifier.
- 6. An apparatus as in claim 1 wherein the transmitter includes an optical wavelength multiplexer formed on the second substrate with an output coupled to the optical output port.
- 7. An apparatus as in claim 6 wherein the transmitter includes a plurality of optical sources, integrally formed on the second substrate, coupled to the electrical input ports and to the multiplexer.
- 8. An apparatus as in claim 7 wherein each of the sources includes drive circuitry coupled to a respective laser with the drive circuitry, the lasers and the multiplexer integrally formed on the second substrate.
- 9. An apparatus as in claim 8 wherein the first and second substrates comprise a single common substrate.
- 10. An apparatus as in claim 1 which includes the other of the transmitter and the receiver wherein the electrical outputs and inputs of the receiver and the transmitter are coupled to an electrical switching fabric.
- 11. An apparatus as in claim 1 wherein the transmitter electrical-to-optical converters comprise integrated drive circuits carried by the second substrate with each such circuit coupled to a respective member of a plurality of integrated optical sources.
- 12. An apparatus as in claim 11 with the optical sources each including a laser integrated on the second substrate.
- 13. An apparatus as in claim 1 with the limiting amplifiers each including a transimpedance amplifier and configured for 2R signal regeneration.
- 14. An apparatus as in claim 13 with an electrical network coupled between the receiver outputs and the transmitter inputs.
- 15. An apparatus as in claim 1 wherein the receiver module and the transmitter module are carried in a common housing.
- 16. An apparatus as in claim 1 wherein the receiver module and the transmitter module are carried on the same substrate.
- 17. An apparatus as in claim 14 wherein the electrical network comprises an electrical switch fabric.
- 18. An opto-electric transceiver comprising:
a housing; an optical input port and an optical output port carried by the housing; a plurality of electrical inputs and a plurality of electrical outputs carried by the housing; a receiver opto/electric integrated circuit carried by the housing coupled between the optical input port and the plurality of electrical outputs with the receiver circuit including a plurality of integrated waveguides, a plurality of integrated photoelectric converter circuits and a plurality of integrated regeneration circuits with a member of the plurality of waveguides coupled to a respective member of the plurality of photoelectric converter circuits and to a respective member of the plurality of regeneration circuits forming a series opto/electrical path for a respective wavelength coupled to the optical input; and a transmitter electro/optical integrated circuit carried by the housing coupled between the plurality of electrical inputs and the optical output port with the transmitter circuit including a plurality of integrated optical sources, a plurality of integrated waveguides wherein the members of the plurality of waveguides are coupled to respective inputs of an integrated optical wavelength multiplexer with a composite output of the multiplexer coupled to the optical output port.
- 19. A transceiver as in claim 18 with the receiver circuit elements formed on a first substrate and the transmitter circuit elements formed on a second substrate.
- 20. A wavelength division multiplexing communications system comprising:
a plurality of optical fibers; a plurality of integrated, optical add/drop modules wherein the modules each include at least one integrated receiver module with a common substrate which carries an optical input, coupled to a respective optical fiber, and a plurality of electrical outputs, and an integrated transmitter module with another common substrate which carries a plurality of electrical input ports and an optical output coupled to a respective optical fiber where each module includes a plurality of waveguides integrally formed on a respective substrate; and a controllable electrical switching fabric for coupling some of the electrical outputs to some of the electrical input ports with signal input and output ports for inputting or outputting information carrying electrical signals.
- 21. A system as in claim 20 wherein the fibers are configured in one of a mesh network, a tree network or a ring network
- 22. A system as in claim 20 wherein the receiver modules include an optical wavelength demultiplexer coupled to the optical input at an input side and to an integrated plurality of waveguides at a plurality of outputs with selected pairs of optical signals carried by respective waveguides optically spaced apart from one another a predetermined number of wavelengths.
- 23. A system as in claim 22 wherein the transmitter modules include an optical wavelength multiplexer coupled to an optical output at an output side and to an integrated plurality of waveguides at a plurality of outputs with selected pairs of optical signals carried by respective waveguides optically spaced apart from one another a predetermined number of wavelengths.
- 24. A system as in claim 20 wherein the receiver module includes a plurality of integrated electrical signal limiting gain elements with each optical waveguide therein coupled as an input to a respective one of the gain elements with the gain elements converting, reamplifying and reshaping inputs from the respective waveguides.
- 25. A system as in claim 20 wherein the switching fabric implements wavelength switching between a respective receiver and a transmitter to minimize stranded bandwidth.
- 26. A method of modifying a passive optical network having a plurality of interconnecting optical fibers comprising:
removing the existing network terminating units; removing any optical splitters; completing optical paths interrupted by the removal of the splitters so as to couple optical fibers having opposite transmission directions relative to the respective removed splitter; and installing add/drop nodes at the locations from which the terminating units had been removed.
- 27. A method as in claim 26 wherein the add/drop nodes include a reconfigurable switch fabric.
- 28. A method as in claim 26 wherein the add/drop nodes and the inter-connecting optical fibers form a ring network.
- 29. A collapsed ring network comprising:
a plurality of pairs of optical fibers wherein members of a given pair transmit optical signals in opposite directions, and, wherein some of the pairs terminate at add/drop nodes while others are coupled to selected ones of other fiber pairs such that fibers which are transmitting signals in a common direction are linked.
- 30. A network as in claim 29 wherein at least some of the add/drop nodes include signal add/drop ports wherein added signals must be circulated through the network to be dropped at the respective node.
- 31. A transceiver as in claim 18 wherein the regeneration circuits carry out one of a 2R-type regeneration function or a 3R-type regeneration function.
- 32. A transceiver as in claim 18 wherein the regeneration circuits function on a per channel basis to amplify incoming signals from a respective photoelectric converter circuit.
Parent Case Info
[0001] The benefit of the filing date of Provisional Patent Application Serial No. 60/291,506, filed May 16, 2001 is hereby claimed.
Provisional Applications (1)
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Number |
Date |
Country |
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60291506 |
May 2001 |
US |