Claims
- 1. A method of maintaining desirable optical performance of a laser of an optoelectronic apparatus at extreme temperatures, the method comprising:
at a first temperature, determining a first bias current at which the laser generates optical signals at a first predefined level; and at a second temperature outside of a predefined range of the first temperature, the predefined range having a lower end-point temperature and a higher end-point temperature, determining a second bias current at which the laser generates optical signals at a second predefined level; wherein:
when the second temperature is greater than the higher end-point temperature of the predefined range, the second predefined level is defined to be less than the first predefined level; and when the second temperature is less than the lower end-point temperature of the predefined range, the second predefined level is defined to be greater than the first predefined level.
- 2. The method of claim 1, further comprising:
calculating the predefined range of the first temperature based at least in part on one or more of: slope efficiency, minimum bias current, maximum bias current, minimum level of optical signals, and maximum level of optical signals, for a plurality of lasers.
- 3. The method of claim 1, further comprising:
calculating the predefined range of the first temperature based on operating conditions that meet a predefined operating specification for a plurality of lasers.
- 4. The method of claim 1, further comprising:
calculating the second predefined level based at least in part on one or more of: slope efficiency, minimum bias current, maximum bias current, minimum level of optical signals, and maximum level of optical signals, for a plurality of lasers.
- 5. The method of claim 1, further comprising:
calculating the second predefined level based on operating conditions that meet a predefined operating specification for a plurality of lasers.
- 6. The method of claim 1, wherein:
when the second temperature is greater than the higher end-point temperature, the second predefined level is defined to be less than the first predefined level in proportion to a difference in temperature between the second temperature and the higher end-point temperature; and when the second temperature is less than the lower end-point temperature, the second predefined level is defined to be greater than the first predefined level in proportion to a difference in temperature between the second temperature and the lower end-point temperature.
- 7. The method of claim 6, wherein, when the second temperature is greater than the higher end-point temperature, the second predefined level is defined to be less than the first predefined level as a linearly-proportional function of the difference in temperature between the second temperature and the higher end-point temperature.
- 8. The method of claim 6, wherein, when the second temperature is less than the higher end-point temperature, the second predefined level is defined to be greater than the first predefined level as a linearly-proportional function of the difference in temperature between the second temperature and the lower end-point temperature.
- 9. The method of claim 6, further comprising storing the first bias current and the first current swing, correlated to the first temperature, and the second bias current and the second current swing, correlated to the second temperature, in the optoelectronic apparatus.
- 10. The method of claim 9, further comprising:
sensing an instantaneous temperature; based on the sensed instantaneous temperature and the stored values, determining a bias current and a current swing at which the laser generates optical signals at a predefined level and a predefined extinction ratio.
- 11. The method of claim 6, further comprising:
determining a first current swing, corresponding to the first bias current, at which the laser generates optical signals at a first predefined extinction ratio.
- 12. The method of claim 11, further comprising:
determining a second current swing, corresponding to the second bias current, at which the laser generates optical signals at a second extinction ratio.
- 13. A method of maintaining desirable optical performance of a laser of an optoelectronic apparatus at extreme temperatures, the method comprising:
determining a predefined range of temperatures having a high temperature cut-off and a low temperature cut-off, the predefined range of temperatures corresponding to operation of the laser to generate optical signals at a first predefined level and a first predefined extinction ratio; determining a first bias current and a first current swing, corresponding to a first temperature within the predefined range of temperatures, at which the laser generates optical signals at the first predefined level and the first predefined extinction ratio; determining a second bias current and a second current swing, corresponding to a second temperature outside the predefined range of temperatures, at which the laser generates optical signals at a second predefined level and a second predefined extinction ratio; and storing, in the optoelectronic apparatus, the first bias current and the first current swing correlated to the first temperature, and the second bias current and the second current swing correlated to the second temperature; wherein:
when the second temperature is less than the low temperature cut-off of the predefined range of temperatures, the second predefined level and the second predefined extinction ratio are defined to be greater than the first predefined level and the first predefined extinction ratio, respectively, in proportion to a difference between the second temperature and the low temperature cut-off; when the second temperature is greater than the high temperature cut-off of the predefined range of temperatures, the second predefined level and the second predefined extinction ratio are defined to be less than the first predefined level and the first predefined extinction ratio, respectively, in proportion to a difference between the second temperature and the high temperature cut-off.
- 14. The method of claim 13, further comprising:
sensing an instantaneous temperature; based on the sensed instantaneous temperature and the stored values, determining a bias current and a current swing for the laser so as to generate optical signals at the predefined level and at the predefined extinction ratio.
- 15. The method of claim 13, further comprising:
calculating the low-temperature cut-off and the high-temperature cut-off based at least in part on one or more of: slope efficiency, minimum bias current, maximum bias current, minimum level of optical signals, and maximum level of optical signals, for a plurality of lasers.
- 16. The method of claim 13, further comprising:
calculating the low-temperature cut-off and the high-temperature cut-off based on operating conditions that meet a predefined operating specification for a plurality of lasers.
- 17. The method of claim 13, further comprising:
calculating the second predefined level and the second predefined extinction ratio based at least in part on one or more of: slope efficiency, minimum bias current, maximum bias current, minimum level of optical signals, and maximum level of optical signals, for a plurality of lasers.
- 18. The method of claim 13, further comprising:
calculating the second predefined level and the second predefined extinction ratio based on operating conditions that meet a predefined operating specification for a plurality of lasers.
- 19. The method of claim 13, wherein, when the second temperature is less than the low temperature cut-off, the second predefined level and the second extinction ratio are defined to be greater than the first predefined level and the first extinction ratio, respectively, as a linearly-proportional function of the difference between the second temperature and the low temperature cut-off.
- 20. The method of claim 13, wherein, when the second temperature is greater than the higher temperature cut-off, the second predefined level and the second extinction ratio are defined to be less than the first predefined level and the first extinction ratio, respectively, as a linearly-proportional function of the difference between the second temperature and the high temperature cut-off.
- 21. An optoelectronic apparatus comprising:
an optical emitter; an emitter driver circuit coupled to drive the optical emitter; a controller circuit coupled to the emitter driver circuit, the controller circuit configured to provide control signals to the emitter driver circuit to maintain consistent optical performance of the optical emitter over a predefined range of temperatures, and to deviate from consistent optical performance utilizing a specified deviation methodology for temperatures outside of the predefined range of temperatures; and a memory coupled to the controller circuit and having stored therein temperature values and at least two control values for the emitter driver circuit for at least some temperature values; wherein the controller circuit generates the control signals based at least in part on two of the control values that are associated with the same temperature value in the memory.
- 22. The optoelectronic apparatus of claim 22, further comprising a temperature sensor to detect an approximate temperature of the optical emitter.
- 23. The optoelectronic apparatus of claim 23, wherein the controller circuit generates the control signals based at least in part on the approximate temperature of the optical emitter.
- 24. The optoelectronic apparatus of claim 23, wherein if the approximate temperature is higher than the predefined range of temperatures, the controller circuit provides control signals to the emitter driver circuit so as to decrease optical performance of the optical emitter in accordance with the specified deviation methodology.
- 25. The optoelectronic apparatus of claim 23, wherein if the approximate temperature is lower than the predefined range of temperatures, the controller circuit provides control signals to the emitter driver circuit so as to increase optical performance of the optical emitter in accordance with the specified deviation methodology.
- 26. The optoelectronic apparatus of claim 21, wherein the optical emitter comprises a laser.
- 27. The optoelectronic apparatus of claim 21, wherein the controller circuit and the memory are portions of a single integrated circuit.
- 28. The optoelectronic apparatus of claim 21, wherein the memory has stored therein a value for controlling a laser bias current and a value for controlling a current swing of the laser in association with at least one of the temperature values.
- 29. The optoelectronic apparatus of claim 21, wherein the memory comprises a nonvolatile memory.
Parent Case Info
[0001] The present application is a continuation-in-part of, and claims priority to, U.S. Provisional Patent Application No. 60/357,070 filed Feb. 12, 2002, and bearing attorney docket number 9775-0088-888, which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
|
60357070 |
Feb 2002 |
US |