Claims
- 1. A method for writing arbitrary refractive index perturbations along an optical waveguide, the method comprising the steps of:
- providing a waveguide having a photosensitive region;
- providing a writing beam of actinic radiation having a nominal diameter D, the writing beam defining an optical axis;
- translating the waveguide relative to the optical axis of the writing beam at a known velocity v(t);
- modulating the radiation intensity I(t) of the writing beam as a function of time t;
- delivering a fluence of radiation, .PHI.(x), directly to the waveguide, wherein ##EQU17## wherein the refractive index change .DELTA.n.sub.(x) at a position x along the waveguide length is related to the fluence delivered to that position as, .DELTA.n.sub.(x) =C.multidot..PHI..sub.(x), wherein C is a scaling factor that accounts for the photosensitivity of the waveguide.
- 2. The method of claim 1, further comprising the step of modulating the intensity of the writing beam in a periodic manner as a function of time t at a frequency f(t) to deliver a fluence of radiation to the waveguide, wherein: ##EQU18## where I.sub.0 is the maximum intensity and A.sub.n, are weighting components for the n.sup.th term in the Fourier series representation of the function .PHI..sub.(x).
- 3. The method of claim 1, further comprising the step of writing a periodic index perturbation of period .LAMBDA. into the waveguide, where ##EQU19##
- 4. The method of claim 2, further comprising the step of modulating the peak intensity I.sub.0 of the periodically-modulated writing beam.
- 5. The method of claim 2, further comprising the step of modulating the writing beam intensity to control independently each term, A.sub.n, of the Fourier series representation of the function defining the fluence delivered to the waveguide.
- 6. The method of claim 1, wherein the waveguide is an optical fiber having a photosensitive region.
- 7. The method of claim 1, wherein I(t) is an offset sinusoidal function expressible by a Fourier series as wherein the fluence delivered to the waveguide is expressible as ##EQU20##
- 8. The method of claim 1, wherein I(t) is an offset periodic square wave expressible by a Fourier series as
- 9. The method of claim 1, wherein the index perturbation creates a transmission loss spectrum through the waveguide that is matched to the inverted erbium gain spectrum.
- 10. An optical amplifier including a waveguide having an index perturbation manufactured in accordance with the method of claim 1.
- 11. A method for manufacturing a waveguide having a refractive index perturbation, wherein the change in the refractive index along a length x of the waveguide can be expressed as .DELTA.n(x), the method comprising the steps of: providing a waveguide having a photosensitive region and a photosensitivity factor expressible as C;
- providing a writing beam of actinic radiation with a nominal diameter D;
- controlling the translation of the waveguide relative to the writing beam so that the velocity of the waveguide, v(t), for any given point in time t during waveguide irradiation is known;
- controlling the radiation intensity I(t) of the writing beam so the waveguide location x receives a total radiation dose .PHI., wherein the fluence of radiation delivered to the waveguide along its length, .PHI.(x), is related to the index perturbation as .DELTA.n.sub.(x) =C.multidot..PHI..sub.(x).
- 12. The method of claim 11, wherein ##EQU21##
- 13. The method of claim 11, further comprising the step of modulating the radiation intensity in a periodic manner as a function of time t at a frequency f to deliver a fluence to the waveguide, wherein: where I.sub.0 is the maximum intensity and A.sub.n are weighting components for the n.sup.th term in the Fourier series representation of the function .PHI..sub.(x).
- 14. The method of claim 11, further comprising the step of writing a periodic index perturbation of period .LAMBDA. into the waveguide, where ##EQU22##
- 15. The method of claim 13, further comprising the step of modulating the peak intensity I.sub.0 of the periodically-modulated writing beam.
- 16. The method of claim 13, further comprising the step of modulating the writing beam intensity to control independently each term, A.sub.n, of the Fourier series representation of the function defining the fluence delivered to the waveguide.
- 17. The method of claim 11, wherein the waveguide is an optical fiber having a photosensitive region.
- 18. The method of claim 11, wherein I(t) is an offset sinusoidal function expressible by a Fourier series as wherein the fluence delivered to the waveguide is expressible as ##EQU23##
- 19. The method of claim 11, wherein I(t) is an offset periodic square wave expressible by a Fourier series as
- 20. The method of claim 11, wherein the index perturbation creates a transmission loss spectrum through the waveguide that is matched to the inverted erbium gain spectrum.
- 21. An optical amplifier including a waveguide having an index perturbation manufactured in accordance with claim 11.
- 22. A long-period grating writing assembly for writing long-period gratings on a photosensitive waveguide, the assembly comprising: a source of light producing a writing beam of actinic radition having a peak intensity of I.sub.0 and a nominal diameter D;
- a light modulator placed along the path of the writing beam of actinic radiation that controls the intensity I(t) of the writing beam, the modulator including electronic signal controls, the electronic signal controls having an amplitude modulation function, a frequency modulation function and a d.c. offset;
- a fiber holding assembly and translation mechanism that supports the waveguide, aligns the waveguide to intersect the path of the writing beam and translates the waveguide at a relative velocity v(t) with respect to the writing beam.
- 23. The long-period writing assembly of claim 22, the fiber holding assembly including a dispensing spool, a velocity-controlled take-up spool, and a phase lock-loop circuit that controls the rotational velocity of the take-up spool, wherein the rotational velocity of the take-up spool is coupled to act in synchrony with the light modulator.
- 24. The assembly of claim 22, wherein the modulator modulates the radiation intensity of the writing beam in a periodic manner as a function of time t at a frequency f to deliver a fluence to the waveguide, wherein: ##EQU24##
RELATED U.S. APPLICATIONS
The present application is a continuation-in-part of related U.S. application Ser. No. 08/942,590, entitled Method For Fabrication Of In-Line Optical Waveguide Refractive Index Gratings Of Any Length filed on Oct. 2, 1997, which is hereby incorporated by reference.
US Referenced Citations (10)
Foreign Referenced Citations (6)
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0 793 123 A1 |
Sep 1997 |
EPX |
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Continuation in Parts (1)
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Number |
Date |
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Parent |
942590 |
Oct 1997 |
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