Claims
- 1. An optical communication device comprising:
at least one light focusing device; at least one input optical element optically coupled to the light focusing device, the input optical element operable to transmit a light signal so as to project the light signal through the light focusing device; at least one diffraction grating optically coupled to the light focusing device, the diffraction grating operable to diffract the light signal into spectral components and return the spectral components through the light focusing device; at least one output optical element operable to receive one of the spectral components from the light focusing device; and at least one spectral modifying element operable to transform the light signal primarily in a direction of dispersion associated with the diffraction grating to increase the passband profile of the spectral component received by the at least one output optical element.
- 2. The device of claim 1, wherein the light focusing device comprises a lens.
- 3. The device of claim 1, wherein the light focusing device and the spectral modifying element are integrated into one component.
- 4. The device of claim 1 wherein the spectral modifying element further comprises a flat plate disposed at a selected angle relative to an optical axis of the device.
- 5. The device of claim 1, wherein the spectral modifying element comprises one of a cylindrical lens and a diffractive element.
- 6. The device of claim 1, wherein the spectral modifying element further comprises one of a refractive lens having at least one aspherical cylindrical surface and a diffractive analogue of the refractive lens.
- 7. The device of claim 1, wherein the spectral modifying element further comprises a cylindrical surface with a series of random phase plates.
- 8. The device of claim 1, further comprising a focal plane defined in part by a respective end of the at least one input optical element and a respective end of the at least one output optical element, wherein the spectral modifying element is disposed between the focal plane and the light focusing device.
- 9. The device of claim 1, wherein the spectral modifying element is disposed between the light focusing device and the diffraction grating.
- 10. The device of claim 1, wherein the spectral modifying element further comprises a cylindrical lens having a focal length much longer than a focal length of the light focusing device.
- 11. The device of claim 1, wherein the spectral modifying element has a first focal length in one direction and a second focal length in another direction, the first focal length being different from the second focal length.
- 12. The device of claim 1, further comprising:
an input fiber optic cable coupled with the at least one input optical element to communicate a multiple wavelength optical signal thereto, wherein the at least one output optical element is an array of output optical elements positioned to receive spectral components of the multiple wavelength optical signal; and a plurality of output fiber optic cables respectively coupled with the output optical elements.
- 13. An optical communication device, comprising:
at least one light focusing device; a first number of input optical elements operable to transmit respective optical signals, the input optical elements positioned to project the respective optical signals through the light focusing device; a diffraction grating positioned to receive the respective optical signals from the light focusing device, the diffraction grating operable to diffract the respective optical signals into a combined multiple wavelength optical signal and to return the combined optical signal through the light focusing device; a second number of output optical elements operable to receive the combined optical signal from the light focusing device, the second number being smaller than the first number; and a spectral modifying element operable to transform the respective signals primarily in a direction of dispersion associated with the diffraction grating to increase the passband profile of the combined optical signal received by the at least one output optical element.
- 14. The device of claim 13, wherein the light focusing device comprises a lens integrated with the spectral modifying element.
- 15. The device of claim 13 wherein the spectral modifying element further comprises a flat plate disposed at a selected angle relative to the optical axis of the device.
- 16. The device of claim 13, wherein the spectral modifying element comprises a cylindrical lens having unequal focal lengths in two directions.
- 17. The device of claim 13, wherein the spectral modifying element further comprises one of an aspherical cylindrical lens and a diffractive element.
- 18. The device of claim 13, wherein the spectral modifying element further comprises a cylindrical surface with at least one random phase plate.
- 19. The device of claim 13, further comprising:
a focal plane defined in part by a respective end of the at least two input optical elements and a respective end of the at least one output optical element, wherein the spectral modifying element is disposed between the focal plane and the light focusing device.
- 20. The device of claim 13, further comprising the spectral modifying element disposed between the light focusing device and the diffraction grating.
- 21. The device of claim 13, wherein the spectral modifying element further comprises a cylindrical lens having a focal length much longer than a focal length of a collimating optics.
- 22. The device of claim 13, wherein the first number of input optical elements is an array of input optical elements to receive respective optical signals, further comprising:
a plurality of input fiber optic cables respectively coupled with the array of input optical elements to transmit the respective optical signals thereto; and an output fiber optic cable coupled with the output optical elements to receive the combined multiple wavelength optical signal therefrom.
- 23. A method for demultiplexing a multiple wavelength optical signal comprising:
projecting the multiple wavelength optical signal from an input optical element to a light focusing device; collimating and focusing the multiple wavelength optical signal with the light focusing device and directing this collimated and focused optical signal to a diffraction grating; diffracting the multiple wavelength optical signal into respective spectral components using the diffraction grating with each spectral component having a passband profile; directing the spectral components from the diffraction grating to the light focusing device; collimating and focusing the spectral components with the light focusing device and directing the spectral components to an array of output optical elements; respectively receiving the spectral components from the light focusing device at the array of output optical elements; and broadening and flattening the passband profile of each spectral component using a spectral modifying element.
- 24. A method for multiplexing respective spectral components to form a multiple wavelength optical signal comprising:
projecting respective optical signals from an array of input optical elements to a light focusing device; collimating and focusing the respective optical signals with the light focusing device and directing the respective optical signals to a diffraction grating; diffracting the respective optical signals into a multiple wavelength optical signal having a passband profile using the diffraction grating; directing the multiple wavelength optical signal from the diffraction grating to the light-focusing device; collimating and focusing the multiple wavelength optical signal with the light focusing device and directing the multiple wavelength optical signal to an output optical elements; and broadening and flattening the passband profile of the multiple wavelength optical signal using a spectral modifying element.
- 25. An optical communication system comprising:
at least one demultiplexer having an input optical element, a light focusing device, and a diffraction grating disposed on an optical axis of the demultiplexer; the input optical element operable to transmit a multiple wavelength optical signal through the light focusing device; the diffraction grating operable to diffract the multiple wavelength signal into spectral components and to return the spectral components through the light focusing device to an array of output optical elements; each output optical element operable to respectively receive one of the spectral components from the light focusing device; the diffraction grating having a direction of dispersion approximately normal to the optical axis; and a spectral modifying element operable to broaden the multiple wavelength optical signal primarily in the direction of dispersion of the diffraction grating to increase the passband profile of the spectral components received by the array of output optical elements.
- 26. The optical communication device of claim 25, further comprising:
at least one multiplexer having an array of input optical elements, a light focusing device, and a diffraction grating disposed on an optical axis of the multiplexer; the input optical elements operable to transmit respective optical signals through the light focusing device to the diffraction grating; the diffraction grating operable to diffract the respective optical signals into a multiple wavelength optical signal and to return the multiple wavelength optical signal through the light focusing device to output optical elements; the output optical element operable to receive the multiple wavelength optical signal from the light focusing device; the diffraction grating having a direction of dispersion approximately normal to the optical axis; and a spectral modifying element operable to broaden the multiple wavelength optical signal primarily in the direction of dispersion of the diffraction grating to increase the passband profile of the multiple wavelength optical signal received by the output optical elements.
- 27. An optical communication device comprising:
at least two light focusing devices; at least one input optical element optically coupled to a first light focusing device, the input optical element operable to transmit a light signal so as to project the light signal through the first light focusing device; at least one diffraction grating optically coupled to the first light focusing device, the diffraction grating operable to diffract the light signal into spectral components and return the spectral components through a second light focusing device; at least one output optical element operable to receive one of the spectral components from the second light focusing device; and at least one spectral modifying element operable to transform the light signal primarily in a direction of dispersion associated with the diffraction grating to increase the passband profile of the spectral component received by the at least one output optical element.
RELATED APPLICATION
[0001] This application claims priority from U.S. Provisional Application No. 60/301,322 filed on Jun. 27, 2001 and entitled “System and Method for Controlling Spectral Passband Profile.”
Provisional Applications (1)
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Number |
Date |
Country |
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60301322 |
Jun 2001 |
US |