Claims
- 1. An optical communication system, comprising:
a laser array having a plurality of laser transmitters transmitting a plurality of optical beams at a plurality of different wavelengths; a diffraction grating optically coupled to said laser array, the diffraction grating diffracting each of the optical beams at a substantially equal diffraction angle to form a combined optical beam; and an optical communication media optically coupled to the diffraction grating, the optical communication media receiving the combined optical beam.
- 2. The optical communication system of claim 1 wherein each of the plurality of optical beams transmitted by the laser array is incident upon the diffraction grating at a different angle of incidence.
- 3. The optical communication system of claim 2 wherein the angle of incidence on the grating for each of the plurality of optical beams transmitted by the laser array varies in accordance with separation between adjacent laser transmitters.
- 4. The optical communication system of claim 1 further comprising a collimating lens optically coupled between the laser array and diffraction grating, wherein the collimating lens collimates the transmit optical beams and forwards collimated beams to the diffraction grating.
- 5. The optical communication system of claim 4 further comprising a focusing lens optically coupled between the diffraction grating and the optical communication media wherein the focusing lens focuses the combined optical beam into the optical communication media.
- 6. The optical communication system of claim 1 wherein spacing between adjacent lasers in the laser array is nonlinear.
- 7. The optical communication system of claim 1 further comprising a receiver coupled to the optical communication media.
- 8. The optical communication system of claim 1 further comprising one or more electro-absorption modulators monolithically integrated with one or more of the plurality of laser transmitter in the laser array, wherein the electro-absorption modulators modulate the optical beam of a corresponding laser transmitter in accordance with an information signal.
- 9. The optical communication system of claim 1 wherein the diffraction grating comprises a reflection diffraction grating.
- 10. The optical communication system of claim 1 wherein the diffraction grating comprises a transmission diffraction grating.
- 11. The optical communication system of claim 4 further comprising a beam splitter optically coupled between the collimating lens and the diffraction grating, wherein the beam splitter separates the collimated optical beams from the diffracted optical beams.
- 12. An optical communication system comprising:
a laser array having a plurality of laser transmitters transmitting a plurality of optical beams at a plurality of different wavelengths; a virtual image phased array optically coupled to said laser array, wherein ratio of angular separation between adjacent laser transmitter in the array of lasers divided by wavelength separation between the adjacent laser transmitters in the laser array is approximately equal to dispersion of the virtual image phased array so that the virtual image phased array combines the plurality of optical beams into a combined optical beam; and an optical communication media optically coupled to the virtual image phased array, wherein the optical communication media receiving the combined optical beam.
- 13. The optical communication system of claim 12 wherein each of the plurality of optical beams transmitted by the laser array is incident upon the virtual image phased array at a different angle of incidence.
- 14. The optical communication system of claim 13 wherein the angle of incidence on the virtual image phased array for each of the plurality of optical beams transmitted by the laser array varies in accordance with separation between adjacent laser transmitters.
- 15. The optical communication system of claim 12 further comprising a collimating lens optically coupled between the laser array and diffraction grating, wherein the collimating lens collimates the transmit optical beams and forwards collimated beams to the virtual image phased array.
- 16. The optical communication system of claim 15 further comprising a cylindrical lens coupled to the virtual image phased array, wherein the cylindrical lens receives the combined optical beam and forwarding a uniform combined optical beam to a focusing lens that focuses the uniform combined optical beam into the optical communication media.
- 17. The optical communication system of claim 12 further comprising a receiver coupled to the optical communication media.
- 18. The optical communication system of claim 12 further comprising one or more electro-absorption modulators monolithically integrated with one or more of the plurality of laser transmitters in the laser array, wherein the electro-absorption modulators modulate the optical beam of a corresponding laser transmitter in accordance with an information signal.
- 19. The communication system of claim 18 wherein the virtual image phased array comprises a plate formed from optically transparent material having a first reflective coating formed on a first portion of a first side of the plate and a second reflective coating formed on a first portion of a second side of a plate and a low reflectivity region for receiving the transmit optical beams.
- 20. An optical communication system comprising:
a laser array having a plurality of laser transmitters transmitting a plurality of optical beams at a plurality of different wavelengths; a waveguide grating coupler optically coupled to said laser array wherein diffraction order of the grating matches propagating mode of the waveguide; and an optical communication media optically coupled to the waveguide grating coupler, wherein the optical communication media receives the combined optical beam.
- 21. The optical communication system of claim 20 wherein each of the plurality of optical beams transmitted by the laser array is incident upon the waveguide grating coupler at a different angle of incidence.
- 22. The optical communication system of claim 21 wherein the angle of incidence on the waveguide grating coupler for each of the plurality of optical beams transmitted by the laser array varies in accordance with separation between adjacent laser transmitters.
- 23. The optical communication system of claim 20 further comprising a collimating lens optically coupled to the laser array, wherein the collimating lens collimates the plurality of transmit optical beams and forwards a collimated optical beams to a micro-mirror that aligns the collimated optical beams with the waveguide grating.
- 24. An optical communication system comprising:
a laser array having a plurality of laser transmitters formed on a common substrate transmitting a plurality of optical beams at a plurality of different wavelengths; an arrayed waveguide grating monolithically formed on the common substrate, wherein the arrayed waveguide grating receives the plurality of transmit optical beams and combines the plurality of optical beams into a combined optical beam; and an optical communication media optically coupled to the arrayed waveguide grating, wherein the optical communication media receives the combined optical beam.
- 25. The optical communication system of claim 24 wherein length of individual waveguides in the arrayed waveguide grating are so that the plurality of optical beams are coupled to the optical communication media.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority to U.S. Provisional Patent Application Serial No. 60/369,492, entitled “LASER AND LASER SIGNAL COMBINER”, filed Apr. 1, 2002, the contents of which are incorporated herein by reference as if set forth in full.
Provisional Applications (1)
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Number |
Date |
Country |
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60369492 |
Apr 2002 |
US |