Claims
- 1. A selectably directable optical beam deflecting device comprising:
at least one substrate having formed thereon a multiplicity of waveguides, each waveguide receiving light and emitting light, the totality of light emitted by said multiplicity of waveguides producing at least one selectably directable output beam; and at least one multiplexer applying electrical inputs to said at least one substrate for individually controlling the light emitted by each of the multiplicity of waveguides, thereby governing the orientation of said selectably directable output beam.
- 2. A selectably directable optical beam deflecting device according to claim 1 and wherein said at least one multiplexer is a sequential phase controller which controls the phase of the light emitted by each of the multiplicity of waveguides.
- 3. A selectably directable optical beam deflecting device according to claim 1 and wherein said at least one multiplexer is a sequential intensity controller which controls the intensity of the light emitted by each of the multiplicity of waveguides.
- 4. A selectably directable optical beam deflecting device according to claim 1 and wherein said at least one substrate comprises a plurality of substrates, each having formed thereon a multiplicity of waveguides, each waveguide receiving light and emitting light and wherein said at least one multiplexer applies electrical inputs to said plurality of substrates.
- 5. A selectably directable optical beam deflecting device comprising:
a plurality of substrates, each having formed thereon a multiplicity of waveguides, each waveguide receiving light and emitting light, the totality of light emitted by said multiplicity of waveguides producing at least one selectably directable output beam.
- 6. A selectably directable optical beam deflecting device comprising:
at least one substrate having formed thereon a multiplicity of waveguides; and a microlens array receiving light and coupling said received light to said multiplicity of waveguides.
- 7. A selectably directable optical beam generating device comprising:
a light source; at least one substrate having formed thereon a multiplicity of waveguides; and a microlens array receiving light from said light source and coupling said received light to said multiplicity of waveguides.
- 8. An optical device according to claim 1 and wherein said selectably directable optical beam deflecting device provides wavelength division multiplexing functionality.
- 9. An optical device according to claim 1 and having selectably directable beam deflection functionality.
- 10. An optical device according to claim 9 and wherein said multiplicity of waveguides comprises a multiplicity of polarization independent, electrically controlled waveguides, said optical device also comprising:
a light receiver directing light into said multiplicity of waveguides.
- 11. An optical device according to claim 10 and wherein each one of said multiplicity of polarization independent, electrically controlled waveguides comprises first and second phase shifting waveguide portions.
- 12. An optical device according to claim 11 and wherein electric fields of different directions are applied to said first and second phase shifting waveguide portions.
- 13. An optical device according to claim 11 and wherein each of said multiplicity of polarization independent electrically controlled waveguides comprises first and second phase-shifting waveguide portions of respective first and second lengths having respective first and second electric fields of different directions applied thereto.
- 14. An optical device according to claim 10 and wherein at least one of said multiplicity of polarization independent, electrically controlled waveguides comprises first and second phase shifting waveguide portions separated by a quarter-wave plate, whereby light from said first waveguide portion passes through said quarter-wave plate prior to enter said second waveguide portion.
- 15. An optical device according to claim 9 and wherein said multiplicity of waveguides comprises a multiplicity of electrically controlled waveguides, said optical device also comprising:
a light receiver for directing light into said multiplicity of waveguides, said light receiver comprising a selectable polarization rotator.
- 16. An optical device according to claim 9 and wherein said multiplicity of waveguides comprises a multiplicity of electrically controlled waveguides, said optical device also comprising:
a polarization rotator for rotating the polarization of light passing through said multiplicity of electrically controlled waveguides by 90 degrees or an odd integer multiple thereof.
- 17. An optical device according to claim 16 and wherein said polarization rotator operates by generating a magnetic field extending parallel to longitudinal axes of said multiplicity of waveguides.
- 18. An optical device according to claim 16 and wherein said selectable polarization rotator is automatically operative to rotate the polarization so as to provide an optimized light output from said multiplicity of waveguides.
- 19. An optical device according to claim 18 and wherein said selectable polarization rotator is responsive to an output of said multiplicity of waveguides.
- 20. An optical device according to claim 18 and wherein said selectable polarization rotator is responsive to the polarization of an input to said multiplicity of waveguides.
- 21. An optical device according to claim 1 and having selectably directable beam receiving functionality.
- 22. An optical device according to claim 21 and wherein said multiplicity of waveguides comprises a multiplicity of polarization independent, electrically controlled waveguides, said optical device also comprising:
a light receiver directing light into said multiplicity of waveguides.
- 23. An optical device according to claim 22 and wherein each one of said multiplicity of polarization independent, electrically controlled waveguides comprises first and second phase shifting waveguide portions.
- 24. An optical device according to claim 23 and wherein electric fields of different directions are applied to said first and second phase shifting waveguide portions.
- 25. An optical device according to claim 23 and wherein each of said multiplicity of polarization independent electrically controlled waveguides comprises first and second phase-shifting waveguide portions of respective first and second lengths having respective first and second electric fields of different directions applied thereto.
- 26. An optical device according to claim 22 and wherein at least one of said multiplicity of polarization independent, electrically controlled waveguides comprises first and second phase-shifting waveguide portions separated by a quarter-wave plate, whereby light from said first waveguide portion passes through said quarter-wave plate prior to entering said second waveguide portion.
- 27. An optical device according to claim 21 and wherein said multiplicity of waveguides comprises a multiplicity of electrically controlled waveguides, said optical device also comprising:
a light receiver for directing light into said multiplicity of waveguides, said light receiver comprising a selectable polarization rotator.
- 28. An optical device according to claim 21 and wherein said multiplicity of waveguides comprises a multiplicity of electrically controlled waveguides, said optical device also comprising:
a polarization rotator for rotating the polarization of light passing through said multiplicity of electrically controlled waveguides by 90 degrees or an odd integer multiple thereof.
- 29. An optical device according to claim 28 and wherein said polarization rotator operates by generating a magnetic field extending parallel to longitudinal axes of said multiplicity of waveguides.
- 30. An optical device according to claim 28 and wherein said selectable polarization rotator is automatically operative to rotate the polarization so as to provide an optimized light output from said multiplicity of waveguides.
- 31. An optical device according to claim 30 and wherein said selectable polarization rotator is responsive to an output of said multiplicity of waveguides.
- 32. An optical device according to claim 30 and wherein said selectable polarization rotator is responsive to the polarization of an input to said multiplicity of waveguides.
- 33. An optical device according to claim 9 and wherein said selectably directable functionality is realized by means of phase-shifting.
- 34. An optical device according to claim 21 and wherein said selectably directable functionality is realized by means of phase-shifting.
- 35. A selectably directable optical beam generating device according to claim 1 and also comprising:
a light source.
- 36. A selectably directable optical beam generating device according to claim 35 and wherein said at least one multiplexes is a phase controller which controls the phase of the light emitted by each of the multiplicity of waveguides.
- 37. A selectably directable optical beam generating device according to claim 35 and wherein said at least one multiplexer is an intensity controller controls the intensity of the light emitted by each of the multiplicity of waveguides.
- 38. A selectably directable optical beam generating device according to claim 35 and wherein said at least one substrate comprises a plurality of substrates, each having formed thereon a multiplicity of waveguides, each waveguide receiving light and emitting light and wherein said at least one multiplexes applies electrical inputs to said plurality of substrates.
- 39. A selectably directable optical beam generating device according to claim 35 and wherein said light source comprises a laser formed on said at least one substrate.
- 40. An optical device according to claim 1 and wherein said multiplicity of waveguides comprise a multiplicity of electrically controlled waveguides and wherein said optical device also comprises:
a light receiver directing light into said multiplicity of waveguides and including polarization maintaining optical fibers.
- 41. A selectably directable optical beam deflecting device according to claim 1 and also comprising:
a light receiver coupling light to said multiplicity of waveguides at first ends thereof and wherein said multiplicity of waveguides are outwardly tapered at said first ends thereof.
- 42. A selectably directable optical beam deflecting device according to claim 1 and comprising:
a light receiver directing light into said multiplicity of waveguides, said light receiver comprising a cylindrical lens.
- 43. A selectably directable optical beam deflecting device according to claim 1 and comprising:
a light receiver directing light into said multiplicity of waveguides, said light receiver comprising a multi-mode interference coupler.
- 44. A selectably directable optical beam deflecting device according to claim 1 and comprising:
a light receiver directing light into said multiplicity of waveguides, said light receiver comprising a planar wave guide.
- 45. A selectably directable optical beam deflecting device according to claim 44 and wherein said multiplicity of waveguides have first ends which abut said planar waveguide, said first ends being tapered outwardly.
- 46. A selectably directable optical beam deflecting device according to claim 44 and wherein said planar waveguide comprises a light receiving waveguide.
- 47. A selectably directable optical beam deflecting device according to claim 46 and wherein said light receiving waveguide includes a light receiving end which is outwardly tapered.
- 48. A selectably directable optical beam deflecting device according to claim 46 and wherein said light receiving waveguide comprises a modulator.
- 49. A selectably directable optical beam deflecting device according to claim 48 and wherein said modulator receives a modulating input from a light detector monolithically formed therewith on said at least one substrate.
- 50. An optical device according to claim 1 and wherein said multiplicity of waveguides is controllable so as to selectably provide multiple selectably directed output beams.
- 51. An optical device according to claim 1 and also comprising a waveguide filter including:
a necked waveguide having a relatively broad input end which receives light and allows propagation of multi-mode light waves therethrough; a narrowed neck portion at which higher modes radiate outside the waveguide and only the modes which can propagate therethrough pass therethrough; and a relatively broad output end.
- 52. An optical device according to claim 1 and wherein said substrate comprises gallium arsenide.
- 53. An active optical beam transmission device according to claim 1 and also comprising a multiple layer integrated electronic circuit formed on said substrate.
- 54. An active optical beam transmission device according to claim 53 and wherein said multiplicity of waveguides emit a selectably directable beam of light.
- 55. An active optical beam transmission device according to claim 53 and wherein said multiplicity of waveguides selectably receive a beam of light.
- 56. An optical device according to claim 1 wherein said multiplicity of waveguides comprises a multiplicity of electrically controlled waveguides and wherein said device also comprises:
overlying said multiplicity of waveguides, a multiplicity of electrical contacts, each contact providing an electrical connection to at least one of the multiplicity of electrically controlled waveguides.
- 57. An optical device according to claim 1 wherein said multiplicity of waveguides comprises a plurality of waveguide assemblies, each including a multiplicity of electrically controlled waveguides and wherein said device also comprises:
overlying each of said waveguide assemblies, a multiplicity of electrical contacts, each contact providing an electrical connection to at least one of the multiplicity of electrically controlled waveguides in said assembly.
- 58. An optical waveguide-lens device according to claim 1 and wherein said multiplicity of waveguides comprises a multiplicity of electrically controlled, phase-shifting waveguides and wherein said device also comprises:
an electrical control signal source providing electrical signals to said multiplicity of waveguides to cause them to have a desired lens functionality.
- 59. Apparatus according to claim 1 and also comprising an electrical control signal source providing electrical signals to said multiplicity of waveguides to cause them to have a desired lens functionality.
- 60. A selectably directable optical beam deflecting device according to claim 1 and wherein:
said multiplicity of waveguides comprise a multiplicity of phase-shifting waveguides; said at least one substrate comprises multiple mutually insulated conductor layers including a multiplicity of conductors, at least some of which are connected to said waveguides by vias, and wherein said device also comprises: a light receiver directing light into said multiplicity of waveguides.
Priority Claims (1)
Number |
Date |
Country |
Kind |
121138 |
Jun 1997 |
IL |
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BACKGROUND OF THE INVENTION
[0001] Various types of integrated optics beam deflectors are known in the art. U.S. Pat. No. 5,239,598, the disclosure of which is hereby incorporated by reference, and the references cited therein, as well as the following articles are believed to represent the state of the art:
[0002] Katz et al, Phase-locked semiconductor laser array with separate contacts, Appl. Phys. Lett 43, 1983, pp 521-523;
[0003] Vasey et al, Spatial optical beam steering with an AlGaAs integrated phased array, Applied Optics, 32, No. 18, 20 June, 1993, pp 3220-3232.
Divisions (1)
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Number |
Date |
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Parent |
09470642 |
Dec 1999 |
US |
Child |
09470640 |
Dec 1999 |
US |
Continuations (3)
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Number |
Date |
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Parent |
10057787 |
Jan 2002 |
US |
Child |
10175400 |
Jun 2002 |
US |
Parent |
09470640 |
Dec 1999 |
US |
Child |
10057787 |
Jan 2002 |
US |
Parent |
PCT/IL98/00293 |
Jun 1998 |
US |
Child |
09470642 |
Dec 1999 |
US |