Claims
- 1. An apparatus for producing a diffraction pattern in an optical waveguide, the apparatus comprising:
solid state laser means comprising an optical parametric oscillator, wherein the solid state laser means emits an output laser beam having a wavelength in the range of approximately 230 to 250 nanometers; and Bragg writing means for using the output laser beam to produce the diffraction pattern on the optical waveguide.
- 2. The apparatus of claim 1, wherein the solid state laser means comprises means for pumping the optical parametric oscillator with a third harmonic beam.
- 3. The apparatus of claim 1, wherein the solid state laser means comprises means for pumping the optical parametric oscillator with a second harmonic beam.
- 4. The apparatus of claim 1, wherein the solid state laser means comprises means for pumping the optical parametric oscillator with a fundamental beam.
- 5. The apparatus of claim 1, wherein the solid state laser means comprises means for producing the output laser beam using a signal beam emitted by the optical parametric oscillator.
- 6. The apparatus of claim 1, wherein the solid state laser means comprises means for producing the output laser beam using an idler beam emitted by the optical parametric oscillator.
- 7. The apparatus of claim 1, wherein the optical parametric oscillator is formed of a material selected from the group consisting of LBO, BBO, CLBO, KDP, ADP, CDP, CDA, RDA, periodic-poled lithium tantalate, lithium niobate, periodic-poled lithium niobate, potassium niobate, KTP, RTP, CTP, KTA and RTA.
- 8. The apparatus of claim 1, wherein the Bragg writing means comprises an apparatus selected from the group consisting of a holographic Bragg writer, a proximity mask, a projected phase mask, a phase mask interferometer, a Lloyd mirror and a prism interferometer.
- 9. The apparatus of claim 2, wherein the solid state laser means further comprises:
means for splitting the third harmonic beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; and means for mixing a beam emitted by the optical parametric oscillator with the second portion.
- 10. The apparatus of claim 2, wherein the solid state laser means further comprises means for doubling the frequency of a beam emitted by the optical parametric oscillator.
- 11. The apparatus of claim 2, wherein the pumping means comprises an active laser medium doped with a rare earth element.
- 12. The apparatus of claim 2, wherein the solid state laser means further comprises means for mixing a beam emitted by the optical parametric oscillator with the third harmonic beam.
- 13. The apparatus of claim 3, wherein the solid state laser means further comprises:
means for splitting the second harmonic beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; means for mixing the second portion of the second harmonic beam and a fundamental beam to produce a third harmonic beam; and means for mixing a beam emitted by the optical parametric oscillator with the third harmonic beam.
- 14. The apparatus of claim 3, wherein the solid state laser means further comprises:
means for splitting the second harmonic beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; means for producing a fourth harmonic beam from the second portion of the second harmonic beam; and means for mixing a beam emitted by the optical parametric oscillator with the fourth harmonic beam.
- 15. The apparatus of claim 3, wherein the solid state laser means further comprises means for tripling a frequency of a beam emitted by the optical parametric oscillator.
- 16. The apparatus of claim 4, wherein the solid state laser means further comprises:
means for splitting the fundamental beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; means for producing a fourth harmonic beam from the second portion of the fundamental beam; and means for mixing a beam emitted by the optical parametric oscillator with the fourth harmonic beam.
- 17. The apparatus of claim 4, wherein the solid state laser means further comprises:
means for splitting the fundamental beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; means for producing a fourth harmonic beam from the second portion of the fundamental beam; means for separating a signal beam and an idler beam emitted by the optical parametric oscillator; and means for mixing a beam emitted by the optical parametric oscillator with the fourth harmonic beam.
- 18. The apparatus of claim 10, wherein the solid state laser means further comprises an OPO resonator means and wherein the frequency doubling means and the optical parametric oscillator are disposed within the OPO resonator means.
- 19. The apparatus of claim 11, wherein the solid state laser means further comprises diode laser means for pumping the active laser medium.
- 20. The apparatus of claim 12, wherein the solid state laser means further comprises OPO resonator means, and wherein the mixing means and the optical parametric oscillator are disposed within the OPO resonator means.
- 21. An apparatus for producing a diffraction pattern in an optical waveguide, the apparatus comprising:
a solid state laser comprising an optical parametric oscillator, wherein the solid state laser emits an output laser beam having a wavelength in the range of approximately 230 to 250 nanometers; and a Bragg writer for using the output laser beam to produce the diffraction pattern on the optical waveguide.
- 22. The apparatus of claim 21, wherein the solid state laser comprises:
an active laser medium which emits a fundamental beam; a first doubler crystal for producing a second harmonic beam from the fundamental beam; and a tripler crystal for producing a third harmonic beam from the doubler crystal and the fundamental beam, wherein the optical parametric oscillator is pumped by the third harmonic beam.
- 23. The apparatus of claim 21, wherein the solid state laser comprises:
an active laser medium which emits a fundamental beam; and a doubler crystal for producing a second harmonic beam from the fundamental beam, wherein the optical parametric oscillator is pumped by the second harmonic beam.
- 24. The apparatus of claim 21, wherein the solid state laser comprises an active laser medium which emits a fundamental beam, wherein the optical parametric oscillator is pumped with the fundamental beam.
- 25. The apparatus of claim 21, wherein the solid state laser comprises:
an active laser medium which emits a fundamental beam; a nonlinear crystal which produces a harmonic beam from the fundamental beam; and a mixing crystal, wherein the optical parametric oscillator emits an idler beam, and wherein the mixing crystal mixes the idler beam and the harmonic beam.
- 26. The apparatus of claim 21, wherein the solid state laser comprises:
an active laser medium which emits a fundamental beam; a nonlinear crystal which produces a harmonic beam from the fundamental beam; and a mixing crystal, wherein the optical parametric oscillator emits a signal beam, and wherein the mixing crystal mixes the signal beam and the harmonic beam.
- 27. The apparatus of claim 21, wherein the optical parametric oscillator is formed of a material selected from the group consisting of LBO, BBO, CLBO, KDP, ADP, CDP, CDA, RDA, periodic-poled lithium tantalate, lithium niobate, potassium niobate, periodic-poled lithium niobate, KTP, RTP, CTP, KTA and RTA.
- 28. The apparatus of claim 21, wherein the Bragg writer comprises an apparatus selected from the group consisting of a holographic Bragg writer, a proximity mask, a projected phase mask, a phase mask interferometer, a Lloyd mirror and a prism interferometer.
- 29. The apparatus of claim 22, wherein the solid state laser further comprises:
a beam splitter for splitting the third harmonic beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; and a mixing crystal for mixing a beam emitted by the optical parametric oscillator with the second portion.
- 30. The apparatus of claim 22, wherein the solid state laser further comprises a second doubler crystal for doubling the frequency of a beam emitted by the optical parametric oscillator.
- 31. The apparatus of claim 22, wherein the active laser medium is doped with a rare earth element.
- 32. The apparatus of claim 22, wherein the solid state laser further comprises a mixing crystal for mixing a beam emitted by the optical parametric oscillator with the third harmonic beam.
- 33. The apparatus of claim 23, wherein the solid state laser further comprises:
a beam splitter for splitting the second harmonic beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; a tripler crystal for mixing the second portion of the second harmonic beam and a fundamental beam to produce a third harmonic beam; and a mixing crystal for mixing a beam emitted by the optical parametric oscillator with the third harmonic beam.
- 34. The apparatus of claim 23, wherein the solid state laser further comprises:
a beam splitter for splitting the second harmonic beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; a quadrupler crystal for producing a fourth harmonic beam from the second portion of the second harmonic beam; and a mixing crystal for mixing a beam emitted by the optical parametric oscillator with the fourth harmonic beam.
- 35. The apparatus of claim 23, wherein the solid state laser further comprises at least one crystal for tripling a frequency of a beam emitted by the optical parametric oscillator.
- 36. The apparatus of claim 24, wherein the solid state laser further comprises:
a beam splitter for splitting the fundamental beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; at least one crystal for producing a fourth harmonic beam from the second portion of the fundamental beam; and a mixing crystal for mixing a beam emitted by the optical parametric oscillator with the fourth harmonic beam.
- 37. The apparatus of claim 24, wherein the solid state laser further comprises:
a first beam splitter for splitting the fundamental beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; a least one crystal for producing a fourth harmonic beam from the second portion of the fundamental beam; a second beam splitter for separating a signal beam and an idler beam emitted by the optical parametric oscillator; and a mixing crystal for mixing a beam emitted by the optical parametric oscillator with the fourth harmonic beam.
- 38. The apparatus of claim 30, wherein the solid state laser further comprises a resonating cavity, and wherein the frequency doubling means and the optical parametric oscillator are disposed within the resonating cavity.
- 39. The apparatus of claim 31, wherein the solid state laser further comprises a diode laser for pumping the active laser medium.
- 40. The apparatus of claim 32, wherein the solid state laser further comprises a resonating cavity, and wherein the mixing crystal and the optical parametric oscillator are disposed within the resonating cavity.
- 41. A method for producing a diffraction pattern in an optical waveguide, the method comprising:
splitting a third harmonic beam into a first portion and a second portion; pumping an optical parametric oscillator with the first portion; mixing an idler beam emitted by the optical parametric oscillator with the second portion to produce an output laser beam having a wavelength in the range of approximately 230 to 250 nanometers; and writing a Bragg grating on a waveguide by using the output laser beam to produce the diffraction pattern on the optical waveguide.
- 42. An apparatus for producing a Bragg grating in an optical waveguide, the apparatus comprising:
a solid state laser comprising an optical parametric oscillator, wherein the solid state laser emits an output beam having a wavelength in the range of approximately 230 to 250 nanometers; a phase mask for diffracting rays from the output beam; a first mirror; a second mirror; and means for translating at least one of the first mirror and the second mirror, wherein:
the first mirror and the second mirror reflect a first ray and a second ray diffracted by the phase mask; the translating means translates said at least one mirror to cause the first ray and the second ray to produce a portion of the Bragg grating in a first area of the optical waveguide; and a ray not reflected by the first mirror or the second mirror illuminates a second area of the optical waveguide.
- 43. The apparatus of claim 42, further comprising means for rotating at least one of the first mirror and the second mirror.
- 44. The apparatus of claim 42, further comprising means for rotating the optical waveguide.
- 45. An apparatus for producing a Bragg grating in an optical waveguide, the apparatus comprising:
a solid state laser comprising an optical parametric oscillator, wherein the solid state laser emits an output beam having a wavelength in the range of approximately 230 to 250 nanometers; a phase mask for diffracting rays from the output beam; a first mirror; a second mirror; a control for indicating a wavelength for the Bragg grating; means for changing a separation between the phase mask and the optical waveguide, according to a wavelength indicated by the control.
- 46. An apparatus for producing a Bragg grating in an optical waveguide, the apparatus comprising:
a solid state laser comprising an optical parametric oscillator, wherein the solid state laser emits an output beam having a wavelength in the range of approximately 230 to 250 nanometers; a phase mask for diffracting rays from the output beam; a block for refracting rays diffracted by the phase mask; and means for changing an angle between a face of the block and a long axis of the optical waveguide, wherein the refracted rays interfere to create the Bragg grating; and wherein the angle changing means causes the Bragg grating to be slanted.
- 47. An apparatus for producing a Bragg grating in an optical waveguide, the apparatus comprising:
an optical parametric oscillator; a first beam splitter for splitting a fundamental beam into a first portion and a second portion, wherein the first portion pumps the optical parametric oscillator; a least one crystal for producing a fourth harmonic beam from the second portion of the fundamental beam; a second beam splitter for separating a signal beam and an idler beam emitted by the optical parametric oscillator; a mixing crystal for mixing a beam emitted by the optical parametric oscillator with the fourth harmonic beam to produce an output beam having a wavelength in the range of approximately 230 to 250 nanometers; and a proximity mask for using the output beam to produce the Bragg grating in the optical waveguide.
- 48. An apparatus for producing a Bragg grating in an optical waveguide, the apparatus comprising:
a pump laser; a first doubler crystal for doubling the frequency of a first portion of a fundamental beam emitted by the pump laser to produce a second harmonic beam; a tripler crystal for mixing the fundamental beam and the second harmonic beam to produce a third harmonic beam; an optical parametric oscillator which is pumped by the third harmonic beam to produce an OPO beam; a second doubler crystal for doubling a frequency of the OPO beam to produce an output beam having a wavelength in the range of approximately 230 to 250 nanometers; and a Lloyd mirror for using the output beam to produce the Bragg grating in the optical waveguide.
- 49. An apparatus for producing a Bragg grating in an optical waveguide, the apparatus comprising:
an active laser medium; a pump for pumping the active laser medium to emit a fundamental beam; a Q switch for producing periodic emissions of the fundamental beam from the active laser medium; an etalon for controlling a line width of the fundamental beam; a first doubler crystal for producing a second harmonic beam from the fundamental beam; a tripler crystal for producing a third harmonic beam from the second harmonic and the fundamental beam; an optical parametric oscillator which is pumped by the third harmonic beam to produce a fundamental OPO beam; a second doubler crystal for doubling a frequency of the OPO beam to produce an output beam having a wavelength in the range of approximately 230 to 250 nanometers; a prism interferometer for using the output beam to produce the Bragg grating in the optical waveguide, wherein the prism interferometer comprises: a prism; and means for rotating the prism to control a Bragg wavelength of the Bragg grating.
- 50. An apparatus for producing a Bragg grating in an optical waveguide, the apparatus comprising:
a pump laser; a doubler crystal for doubling the frequency of a first portion of a fundamental beam emitted by the pump laser to produce a second harmonic beam; a tripler crystal for mixing the fundamental beam and the second harmonic beam to produce a third harmonic beam; an optical parametric oscillator which is pumped by the second harmonic beam to produce an OPO beam; a mixing crystal for mixing the OPO beam and the third harmonic beam to produce an output beam having a wavelength in the range of approximately 230 to 250 nanometers; and phase mask projection means for using the output beam to produce the Bragg grating in the optical waveguide.
- 51. An apparatus for producing a Bragg grating in an optical waveguide, the apparatus comprising:
a pump laser for generating a fundamental pump beam; a nonlinear crystal for generating a harmonic pump beam from the fundamental pump beam; an optical parametric oscillator which is pumped by the harmonic pump beam to produce an OPO beam; means for producing an output beam having a wavelength in the range of approximately 230 to 250 nanometers from the OPO beam; a processor; means for rotating the optical parametric oscillator according to control signals from the processor; means for controlling a temperature of the optical parametric oscillator according to control signals from the processor; means for measuring a wavelength of the output beam and for sending a measurement signal to the processor; a control for sending a wavelength signal to the processor, the wavelength signal indicating a desired wavelength of the output beam; and Bragg writing means for using the output beam to produce the Bragg grating in the optical waveguide, wherein the processor controls the rotation means and the temperature control means such that an actual wavelength of the output beam is within a predetermined number of nanometers of the desired wavelength.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application claims priority based on the following U.S. Provisional Patent Application Serial Nos., the disclosures of which are incorporated herein by reference for all purposes: No. 60/249,989, filed Nov. 20, 2000; No. 60/269,150, filed Feb. 15, 2001; No. 60/269,152, filed Feb. 15, 2001; and No. 60/276,651, filed Mar. 16, 2001.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60249989 |
Nov 2000 |
US |
|
60269150 |
Feb 2001 |
US |
|
60269152 |
Feb 2001 |
US |
|
60276651 |
Mar 2001 |
US |