Claims
- 1. A method of establishing transmission of light, comprising the steps of:
providing a light-guiding structure incorporating a chirped Bragg-reflector, directing light into an input end of said light-guiding structure, and sending a longitudinal acoustic pulse into said light-guiding structure for propagation along the same, the acoustic pulse being such that, for each location of said acoustic pulse in said Bragg-reflector, the reflectivity for a wavelength associated with said location in said Bragg-reflector is altered.
- 2. The method of claim 1, wherein the propagation of the acoustic pulse along said light-guiding structure causes an alteration of a local grating period of said chirped Bragg-reflector to provide, for each location of said acoustic pulse in said Bragg-reflector, transmission of a wavelength associated with said location, thereby providing a wavelength scan of transmitted wavelengths as the acoustic pulse propagates along said Bragg-reflector.
- 3. The method of claim 1, wherein the acoustic pulse has a first part and a second part, said first part causing a temporary increase of the local grating period of the chirped Bragg-reflector, and said second part causing a temporary decrease of the local grating period of said Bragg-reflector.
- 4. The method of claim 3, wherein the portion of said chirped Bragg-reflector containing the first part of said acoustic pulse has, in its unperturbed state, a longer grating period than the portion of said Bragg-reflector containing the second part of said acoustic pulse.
- 5. The method of claim 1, wherein the step of sending a longitudinal acoustic pulse through the light-guiding structure is performed repeatedly, whereby a plurality of acoustic pulses is sent through said light-guiding structure, of which plurality of acoustic pulses only one acoustic pulse is present in the chirped Bragg-reflector at any one instant.
- 6. The method of claim 1, further comprising the step of detecting, at an output end of the light-guiding structure, the intensity of the light transmitted, the light detected at a certain instant in time corresponding to a certain wavelength, thereby allowing analysis of the power spectrum of the light directed into said light-guiding structure.
- 7. The method of claim 6, further including the step of prefiltering the light to be directed into the light-guiding structure by means of a broadband filter, said filter passing essentially the same wavelength range as the chirped Bragg-reflector reflects.
- 8. The method of claim 3, wherein either one of the first and the second part of the acoustic pulse is predominant, the acoustic pulse thereby causing mainly an increase or mainly a decrease of the local grating period of the Bragg-reflector.
- 9. The method of claim 1, wherein said light-guiding structure is the core of an optical fiber.
- 10. An arrangement for analyzing the power spectrum of a light signal, comprising:
a light-guiding structure, having an input end and an output end; a chirped Bragg-reflector in said light-guiding structure, which chirped Bragg-reflector is provided between the input end and the output end; an acoustic actuator connected to said light-guiding structure; and a detector provided at the output end of said light-guiding structure, said detector delivering a detector output signal, wherein the input end of said light-guiding structure is arranged to receive the light signal to be analyzed, said acoustic actuator is operative to emit a longitudinal acoustic pulse for propagation along the light-guiding structure, and said detector is operative to detect the light thus transmitted through said Bragg-reflector and to provide a detector output signal associated with the power spectrum of said light signal.
- 11. The arrangement of claim 10, further including a broadband filter provided in the light path prior to the input end of the light-guiding structure, said filter being arranged to pass only light of a desired wavelength range to said light-guiding structure.
- 12. The arrangement of claim 11, wherein the broadband filter is arranged to pass essentially the same wavelength range as the chirped Bragg-reflector reflects.
- 13. The arrangement of claim 10, further comprising a logic unit connected to said acoustic actuator, for supplying actuating pulses to said acoustic actuator.
- 14. The arrangement of claim 13, further comprising a processing unit, which is arranged to control the operation of the logic unit.
- 15. The arrangement of claim 13, wherein the logic unit is arranged to perform basic signal analysis of the detector output signal.
- 16. The arrangement of claim 15, wherein the basic signal analysis performed by the logic unit is utilized for the control of the acoustic actuator.
- 17. The arrangement of claim 10, wherein the light-guiding structure is clamped at a first point and a second point thereof, thereby defining a first and a second reflection point, at which reflection points the acoustic pulse is reflected, and effectively providing multiple passages of the acoustic pulse through the Bragg-reflector.
- 18. The arrangement of claim 17, wherein the acoustic actuator is connected to the light-guiding structure at either one of the first and the second reflection points.
- 19. The arrangement of claim 18, wherein the acoustic actuator is arranged to emit a longitudinal acoustic pulse into the light-guiding structure at the time when a previous acoustic pulse, after its reflection, arrives at the point where said actuator is connected to the light-guiding structure.
- 20. A method of analyzing the power spectrum of a light signal, comprising the steps of:
directing the light signal to be analyzed into a light-guiding structure incorporating a chirped Bragg-reflector; sending a longitudinal acoustic pulse into said light-guiding structure for propagation along the same, the acoustic pulse being such that, for each location of said acoustic pulse in said Bragg-reflector, the reflectivity for a wavelength associated with said location in said Bragg-reflector is altered; monitoring the light thus transmitted through said light-guiding structure; and analyzing the monitored light, in order to obtain a power spectrum analysis of the light signal directed into the light-guiding structure.
- 21. The method of claim 20, wherein the propagation of the acoustic pulse along said light-guiding structure causes an alteration of the local grating period of said chirped Bragg-reflector to provide, for each location of said acoustic pulse in said Bragg-reflector, transmission of a wavelength associated with said location, thereby providing a wavelength scan of transmitted wavelengths as the acoustic pulse propagates along said Bragg-reflector.
- 22. The method of claim 20, wherein the acoustic pulse has a first part and a second part, said first part causing a temporary increase of the local grating period of the Bragg-reflector, and said second part causing a temporary decrease of the local grating period of said Bragg-reflector.
- 23. The method of claim 22, wherein the portion of said chirped Bragg-reflector containing the first part of said acoustic pulse has, in its unperturbed state, a longer grating period than the portion of said Bragg-reflector containing the second part of said acoustic pulse.
- 24. The method of claim 20, wherein the step of monitoring the light transmitted through the light-guiding structure includes detecting said transmitted light by means of a detector, the detector providing a detector output signal associated with the power of the transmitted light signal.
- 25. The method of claim 20, wherein said light-guiding structure is the core of an optical fiber.
- 26. The method of claim 24, wherein the step of sending a longitudinal acoustic pulse along the light-guiding structure is performed repeatedly, whereby a plurality of acoustic pulses is sent along said light-guiding structure, of which plurality of acoustic pulses only one acoustic pulse is present in the chirped Bragg-reflector at any one instant.
- 27. The method of claim 26, wherein each acoustic pulse is reflected back and forth between two reflection points in the light-guiding structure, each successive pulse of said plurality of acoustic pulses being sent into the light-guiding structure at the time when the previous acoustic pulse, after its reflection, reaches the acoustic actuator.
- 28. The method of claim 27, wherein the wavelength scan obtained by a passage of an acoustic pulse through the chirped Bragg-reflector is utilized together with a subsequent wavelength scan for spectrum analysis of the light signal directed into the light-guiding structure.
- 29. The method of claim 28, wherein correlation between different wavelength scans in the detector output signal is performed in order to interpret said detector output signals, to ascribe the detector output at a certain instant to a specific wavelength.
- 30. The method of claim 20, further including the step of pre-filtering the light to be directed into the light-guiding structure by means of a broadband filter, said filter passing essentially the same wavelength range as the chirped Bragg-reflector reflects.
- 31. The method of claim 24, wherein the detector output signal is fed to a logic unit, said logic unit processing said detector output signal to provide a logic unit output signal indicative of the power spectrum of the light signal directed into the light-guiding structure.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This is a continuation of application Ser. No. 09/606,084, filed Jun. 29, 2000, the disclosure of which is hereby incorporated by reference.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09606084 |
Jun 2000 |
US |
Child |
10200183 |
Jul 2002 |
US |