Claims
- 1. A wavelength locker apparatus for achieving or maintaining wavelength lock for a tunable laser designed to generate light at a selected one of a plurality of target wavelengths, the wavelength locker apparatus comprising:
a reflectively coupled zigzag waveguide device for receiving a portion of light output by the tunable laser, the zigzag waveguide device having a plurality of filters, each having a passband centered at a respective one of the plurality of target wavelengths, whereby said zigzag waveguide device produces a plurality of filtered light outputs; a plurality of photosensors, one for each of said plurality of filters, each said filter positioned to receive a respective one of the plurality of filtered light outputs, each said filter producing a filter output signal related to the intensity of said portion of light in the passband of the corresponding filter; and a processor for generating, in response to the plurality of filter output signals, a control signal to adjust the lasing wavelength of the tunable laser to achieve or maintain said selected one of the target wavelengths.
- 2. A method for controlling the wavelength of light output by a tunable laser, said tunable laser being designed to generate light at a selected one of a plurality of target wavelengths, the method comprising the steps of:
coupling said light output by the laser into a reflectively coupled zigzag waveguide device having a plurality of filters, each having a passband centered at a respective one of the plurality of target wavelengths; producing, with the zigzag waveguide device, a plurality of filtered light outputs corresponding to said light filtered by the respective passbands of said plurality of filters; producing, with each of a plurality of photosensors positioned to receive a respective one of the plurality of filtered light outputs, a filter output signal related to the intensity of said portion of light in the passband of the corresponding filter; and generating, with a processor, in response to the plurality of filter output signals, a control signal to adjust the lasing wavelength of the tunable laser to achieve or maintain said selected one of the target wavelengths.
- 3. A zigzag waveguide device for monitoring light from a tunable laser, comprising:
a first waveguide coupled to the laser to receive light output; a first wavelength filter coupled to the first waveguide to receive light therefrom, the first wavelength filter transmitting a band of wavelengths and reflecting one or more bands of wavelengths; a second waveguide coupled to the first wavelength filter to receive light reflected from the first wavelength filter; a mirror coupled to the second waveguide to receive light from the second waveguide; a third waveguide coupled to the mirror to receive light reflected from the mirror; a second wavelength filter coupled to the third waveguide to receive light therefrom, the second wavelength filter transmitting a band of wavelengths different from the band of wavelengths transmitted by the first wavelength filter and reflecting one or more bands of wavelengths; a first photodiode coupled to receive light transmitted by the first wavelength filter; a second photodiode coupled to receive light transmitted by the second wavelength filter; and a laser wavelength controller coupled to the tunable laser and capable of modifying the wavelength of the tunable laser based at least in part on an output of one of the first and second photodiodes.
- 4. The zigzag waveguide device of claim 3, wherein the transmission bands of the first and second wavelength filters are in the range of 1500-1600 nm.
- 5. The zigzag waveguide device of claim 3, further comprising:
a fourth waveguide coupled to the second wavelength filter to receive light reflected from the second wavelength filter and also coupled to transmit light to the mirror; a fifth waveguide coupled to the mirror to receive light reflected from the mirror; a third wavelength filter coupled to the fifth waveguide to receive light therefrom, the third wavelength filter transmitting a band of wavelengths different from the bands of wavelengths transmitted by the first and second wavelength filters and reflecting one or more bands of wavelengths; and a third photodiode coupled to receive light transmitted by the third wavelength filter; and
wherein the laser wavelength controller is capable of modifying the wavelength of the tunable laser based at least in part on an output of one of the first, second, and third photodiodes.
- 6. The zigzag waveguide device of claim 3, wherein the bands of wavelengths transmitted by the first and second wavelength filters each include one wavelength from the ITU grid.
- 7. The zigzag waveguide device of claim 3, wherein the first wavelength filter is a DBR.
- 8. The zigzag waveguide device of claim 7, wherein the DBR comprises a plurality of layers and further comprising a means for modifying the index of refraction of at least one of those layers.
- 9. The zigzag waveguide device of claim 3, wherein the first waveguide receives laser light produced by a plurality of lasers, including a second tunable laser and further comprising:
a second laser controller that is capable of modifying the wavelength of the second tunable laser based at least in part on an output of one of the first and second photodiodes.
- 10. The zigzag waveguide device of claim 3, wherein the first and second wavelength filters receive laser light at the same angle of incidence.
- 11. A method for controlling the wavelength of tunable laser output, comprising the steps of:
coupling laser light from the output of a laser into a first waveguide; coupling laser light from the first waveguide to a first wavelength filter that transmits a band of wavelengths and reflects one or more bands of wavelengths; coupling laser light reflected from the first wavelength filter into a second waveguide; coupling laser light from the second waveguide to a mirror; coupling laser light reflected from the mirror into a third waveguide; coupling laser light from the third waveguide to a second wavelength filter that transmits a band of wavelengths different from the band transmitted by the first wavelength filter and reflects one or more bands of wavelengths; coupling laser light transmitted by the first wavelength filter to a first photodiode; coupling laser light transmitted by the second wavelength filter to a second photodiode; and adjusting the wavelength of the laser based at least in part on an output of one of the first and second photodiodes.
- 12. The method of claim 11, wherein the laser light from the output of a laser is coupled to the first waveguide by an optical tap.
- 13. The method of claim 11, wherein the transmission bands of the first and second wavelength filters are in the range of 1500-1600 nm.
- 14. The method of claim 11, further comprising the steps of:
coupling laser light reflected from the second wavelength filter into a fourth waveguide; coupling laser light from the fourth waveguide to the mirror; coupling laser light reflected from the mirror into a fifth waveguide; coupling laser light from the fifth waveguide to a third wavelength filter that transmits a band of wavelengths different from the bands transmitted by the first and second wavelength filters and reflects one or more bands of wavelengths; coupling laser light transmitted by the third wavelength filter to a third photodiode; and
wherein the wavelength of the laser is adjusted based at least in part on an output of one of the first, second, and third photodiodes.
- 15. The method of claim 11, wherein the bands of wavelengths transmitted by the first and second wavelength filters each include one wavelength from the ITU grid.
- 16. The method of claim 11, wherein the first wavelength filter is a DBR.
- 17. The method of claim 16, wherein the DBR comprises a plurality of layers and further comprising the step of modifying the index of refraction of at least one of those layers.
- 18. The method of claim 11, wherein laser light produced by a plurality of lasers, including a second tunable laser, is coupled to the first waveguide and further comprising the step of:
adjusting the wavelength of the second tunable laser based at least in part on an output of one of the first and second photodiodes.
- 19. The method of claim 11, wherein the first and second wavelength filters receive laser light at the same angle of incidence.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This nonprovisional U.S. national application, filed under 35 U.S.C. §111 (a), claims, under 37 C.F.R. §1.78(a)(3), the benefit of the filing date of provisional U.S. national application No. 60/272,672, filed under 35 U.S.C. §111(b) and accorded a filing date of Mar. 01, 2001, the entirety of which is incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60272672 |
Mar 2001 |
US |