Claims
- 1. A device, comprising:
an optical cavity formed of a fiber ring that has a first fiber portion and a second fiber portion; a chamber enclosing only said first fiber portion; a temperature sensor located in said chamber to measure a temperature; a temperature control unit coupled to said chamber and operable to maintain said chamber at a chamber temperature against variations in said measured temperature; an optical coupler coupled in said fiber ring to extract an output optical signal; and a fiber stretcher coupled to a location in said fiber ring and operable to adjust a physical length of said fiber ring according to information in said output optical signal.
- 2. The device as in claim 1, further comprising a passive control element coupled to said second cavity portion and operable to adjust said first cavity portion to negate an effect of thermal expansion without receiving power from a power supply.
- 3. The device as in claim 2, wherein said passive control element includes two different materials with different thermal expansion coefficients.
- 4. The device as in claim 1, wherein said fiber stretcher includes a piezo-electric element.
- 5. The device as in claim 4, wherein said fiber stretcher includes a mechanical arm engaged to said piezo-electric element to amplify a displacement of said piezo-electric element in controlling said physical length.
- 6. The device as in claim 1, further including a microprocessor that controls said temperature control unit.
- 7. A device, comprising:
an optical cavity having a first cavity portion and a second cavity portion; a passive control element coupled to said first cavity portion and operable to adjust said first cavity portion to negate an effect of thermal expansion without receiving power from a power supply; and an active control element coupled to said second cavity portion and operable to adjust said second cavity portion according to information in an output optical signal from said optical cavity, said active control element energized by a power supply.
- 8. The device as in claim 7, wherein said passive control element includes two different materials with different thermal expansion coefficients.
- 9. A device, comprising:
an optical cavity having a first cavity portion and a second cavity portion; a chamber enclosing only said first cavity portion; a temperature sensor located in said chamber to measure a temperature; a first temperature control unit coupled to said chamber and operable to maintain said chamber at a chamber temperature against variations in said measured temperature; and a second thermal control unit coupled to said second cavity portion and operable to adjust a temperature of said second cavity portion according to information in an output optical signal from said optical cavity, wherein said second thermal control unit is designed to have a response time faster than a response time of said first temperature control unit.
- 10. The device as in claim 9, wherein said first temperature control unit includes a thermal electric device.
- 11. A device, comprising:
an optical cavity formed of a fiber ring which includes a doped fiber segment and a dispersion compensation fiber segment, said doped fiber segment responsive to optical pumping by light at a pump wavelength to produce an optical gain at a laser wavelength different from said pump wavelength, said dispersion compensation fiber segment operable to produce optical dispersion that negates optical dispersion in segments of said fiber ring; an optical modulator in said fiber ring to modulate a property of light in said optical cavity at a modulation frequency; an optical filter in said fiber ring to pass light at said laser wavelength while rejecting light at other wavelengths; an output optical coupler in said fiber ring to extract a portion of light at said laser wavelength in said fiber ring as an optical output; a thermal control chamber enclosing only said doped fiber segment and said dispersion compensation fiber segment without said optical modulator, said optical filter, said output optical coupler, and other portions of said fiber ring; a thermal control unit in thermal contact with said thermal control chamber and operable to maintain said chamber at a chamber temperature; and a fiber control element engaged in said fiber ring and operable to change a physical length of said fiber ring to stabilize said optical cavity according to information in said optical output.
- 12. The device as in claim 11, wherein said fiber control element includes a piezo electric tube transducer around which a fiber segment of said fiber ring is wound with a plurality of fiber layers.
- 13. The device as in claim 11, further comprising a microprocessor coupled to receive information on an actual temperature in said chamber and said information in said optical output and operable to produce a temperature control signal that controls said thermal control unit and a fiber control signal that controls said fiber control element.
- 14. The device as in claim 11, further comprising a passive control element coupled to a portion of said fiber ring and operable to adjust said portion to negate an effect of thermal expansion without receiving power from a power supply.
- 15. The device as in claim 14, wherein said passive control element includes two different materials with different thermal expansion coefficients.
Parent Case Info
[0001] This application claims the benefits of U.S. Provisional Application Nos. 60/218,632 entitled “Highly Stable Actively Mode-Locked Fiber Laser” filed on Jul. 17, 2000, and 60/245,869 entitled “Actively Mode-Locked Fiber Laser with Active Cavity Control with Low Power Consumption” and filed on Nov. 3, 2000.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60218632 |
Jul 2000 |
US |
|
60245869 |
Nov 2000 |
US |