IP Library Granted Patent US 6,933,475
Granted Patent B2
US 6,933,475 · App. 10/388,566 · Granted Aug 23, 2005

Method and system for turning on an optical radiation source

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Quick Facts
Patent No.
US 6,933,475
App. No.
10/388,566
Granted
Aug 23, 2005
Kind
B2
Abstract

An optical communication module includes an optical radiation source as well as control circuitry to control the temperature and the power emitted by he optical source. In order to permit soft start-up of the source while avoiding undesired wavelength variations, the optical source is pre-heated before being caused to emit optical radiation. This may be effected by initially heating the optical source to an initial temperature using the thermoelectrical conditioner associated therewith as a heater and subsequently causing a partly under-threshold current to flow through the source, thus causing the source to be heated while still emitting negligible optical power.

Claims (159)

1. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation by heating said optical source to an initial temperature using heater and subsequently heating said optical source by causing a current to flow through said optical source,

wherein said initial temperature is a function of at least one parameter selected from the group consisting of a minimum current value, a temperature to be reached by said optical source during operation, and an estimation of the intensity of the current flowing through said optical source in emitting said radiation during operation;

the method including controlling the temperature of said optical source during said pre-heating as a function of a target temperature,

wherein optical radiation is emitted as a result of current flowing through said optical source above a threshold value, and wherein said optical source has associated therewith control circuitry to control the current flowing through said optical source, and wherein pre-heating said optical source includes causing current to flow through said optical source with an intensity at least partly below said threshold value, whereby said optical source is pre-heated while still emitting negligible optical power.

2. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation by heating said optical source to an initial temperature using a heater and subsequently heating said optical source by causing a current to flow through said optical source,

wherein said initial temperature is a function of at least one parameter selected from the group consisting of a minimum current value, a temperature to be reached by said optical source during operation, and an estimation of the intensity of the, current flowing through said optical source in emitting said radiation during operation;

controlling the temperature of said optical source during said pre-heating as a function of a target temperature,

wherein optical radiation is emitted as a result of current flowing through said optical source;

the method including increasing the intensity of said current during the pre-heating of said optical source up to a predefined minimum current value.

3. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation by heating said optical source to an initial temperature using a heater and subsequently heating said optical source by causing a current to flow through said optical source,

wherein said initial temperature is a function of at least one parameter selected from the group consisting of a minimum current value, a temperature to be reached by said optical source during operation, and an estimation of the intensity of the current flowing through said optical source in emitting said radiation during operation;

controlling the temperature of said optical source during said pre-heating as a function of a target temperature,

wherein optical radiation is emitted as a result of current flowing through said optical source,

increasing the power of said optical radiation generated by said optical source up to a final optical power value;

increasing the temperature of said optical radiation source up to a final temperature value; and

associating with said optical source a wavelength control function to control the wavelength of said optical radiation generated by said optical source after said final optical power and temperature values are reached.

4. The method of claim 3 , wherein said initial temperature is selected as said target temperature.

5. The method of claim 3 , further comprising selecting a laser diode as said optical source.

6. The method of claim 3 , further comprising associating with said optical source at least one temperature conditioning element for controlling the temperature of said optical source.

7. The method of claim 6 , further comprising using said temperature conditioning element as said heater for heating said optical source to said, initial temperature.

8. The method of claim 3 , further comprising associating with said optical source at least one current driver to selectively control the intensity of current flowing, through said optical source.

9. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation by heating said optical source to an initial temperature using a heater and subsequently heating said optical source by causing a current to flow through said optical source,

wherein said initial temperature is a function of at least one parameter selected from the group consisting of a minimum current value, a temperature to be reached by said optical source during operation, and an estimation of the intensity of the current flowing through said optical source in emitting said radiation during operation;

controlling the temperature of said optical source during said pre-heating as a function of a tar et temperature,

wherein optical radiation is emitted as a result of current flowing through said optical source;

the method including gradually increasing the power of the optical radiation generated by said optical source after said predefined minimum current value is reached.

10. The method of claim 9 , wherein said increase in the power of the optical radiation generated by said optical source is effected in a step-wise manner.

11. The method of claim 10 , further comprising controlling the temperature of said optical source by means of said control circuitry by assigning a new temperature target for each step in said step-wise increase of the power of said optical radiation generated by said optical source.

12. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation;

increasing the power of said optical radiation generated by said optical source up to a final optical power value;

increasing the temperature of said optical radiation source up to a final temperature value; and

associating with said optical source a wavelength control function to control the wave length of said optical radiation generated by said optical source after said final optical power and temperature values are reached.

13. The method of claim 12 , further comprising assigning to said wavelength control function a final wavelength target value for the wavelength of the optical radiation generated by said optical source.

14. The method of claim 12 , further comprising disabling said temperature control circuitry when said wavelength control function is enabled.

15. A method for turning an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation;

generating a modulation current to modulate said optical source to produce data transmission via said optical radiation, so that said optical source has an extinction ratio defined as the ratio of the power of said optical radiation when said optical radiation source is modulated to produce 1 and 0 logical values, respectively;

controlling said extinction ratio; and

at least temporarily discontinuing control of the power generated by said optical radiation source to permit control of said extinction ratio.

16. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation;

storing the value of at least one operating parameter of said optical radiation source during operation;

implementing said method for turning on said optical radiation source as a function of said at least one value stored;

increasing the power of said optical radiation generated by said optical source up to a final optical power value;

increasing the temperature of said optical radiation source up to a final temperature value; and

associating with said optical source a wavelength control function to control the wavelength of said optical radiation generated by said optical source after said final optical power and temperature values are reached.

17. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation;

storing the value of at least one operating parameter of said optical radiation source during operation;

implementing said method for turning on said optical radiation source as a function of said at least one value stored; and

updating said at least one value stored in order to compensate for ageing phenomena affecting said optical radiation source.

18. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation;

storing the value of at least one operating parameter of said optical radiation source during operation; and

implementing said method for turning on said optical radiation source as a function of said at least one value stored,

wherein said optical source emits said optical radiation as a result of current flowing through said optical source above a threshold value and in that said control circuitry is arranged to pre-heat said optical source by causing current to flow through said optical source with an intensity at least partly below said threshold value, whereby said optical source is pre-heated while still emitting negligible optical power.

19. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method, comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation;

storing the value of at least one operating parameter of said optical, radiation source during operation; and

implementing said method for turning on said optical radiation source as a function of said at least one value stored,

wherein said control circuitry is arranged to increase the intensity of said current during the pre-heating of said optical source up to a predefined minimum current value.

20. A system comprising:

an optical radiation source; and

control circuitry to control the temperature of said optical source, wherein said circuitry includes heating means for pre-heating said optical source before said optical source is caused to emit optical radiation,

wherein said optical source emits said optical radiation as a result of current flowing through said optical source,

wherein said control circuitry is arranged to pre-heat said optical source by:

heating said optical source to an initial temperature using a heater; and

subsequently heating said optical source by causing a current to flow through said optical source,

wherein said control circuitry is arranged to control the temperature of said optical source during said pre-heating as a function of a target temperature,

wherein said control circuitry is arranged to:

increase the power of said optical radiation generated by said optical source up to a final optical power value;

increase the temperature of said optical radiation source up to a final temperature value;

perform a wavelength control function of said optical source to control the wavelength of said optical radiation generated by said optical source after said final optical power and temperature values are reached; and

disable temperature control when said wavelength control function is enabled.

21. The system of claim 20 , wherein said control circuitry is arranged to bring said optical radiation source during said pre-heating to a said initial temperature which is a function of at least one parameter selected from the group consisting of a minimum current value, a temperature to be reached by said optical source during operation, and an estimation of the intensity of the current flowing through said optical source in emitting said radiation during operation.

22. The system of claim 20 , wherein said initial temperature is selected as said target.

23. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation;

storing the value of at least one operating parameter of said optical radiation source during operation; and

implementing said method for turning on said optical radiation source as a function of said at least one value stored,

wherein said control circuitry is arranged to increase the intensity of said current during the pre-heating of said optical source up to a predefined minimum current value,

and wherein said control circuitry is arranged to gradually increase the power of the optical radiation generated by said optical source after said predefined minimum current value is reached.

24. The system of claim 23 , wherein said control circuitry is arranged to increase the power of the optical radiation generated by said optical source in a step-wise manner.

25. The system of claim 24 , wherein said control circuitry is arranged to control the temperature of said optical source by assigning a new temperature target for each step in said step-wise increase of the power of said optical radiation generated by said optical source.

26. A system comprising:

an optical radiation source; and

control circuitry to control the temperature of said optical source, wherein said circuitry includes heating means for pre-heating said optical source before said optical source is caused to emit optical radiation,

wherein said control circuitry is arranged to:

increase the power of said optical radiation generated by said optical source up to a final optical power value;

increase the temperature of said optical radiation source up to a final temperature value;

perform a wavelength control function of said optical source to control the wavelength of said optical radiation generated by said optical source after said final optical power and temperature values are reached; and

disable temperature control when said wavelength control function is enabled.

27. The system of claim 26 , wherein said control circuitry is arranged to assign to said wavelength control function a final wavelength target value for the wavelength of the optical radiation generated by said optical source.

28. A system comprising:

an optical radiation source; and

control circuitry to control the temperature of said optical source, wherein said circuitry includes heating means for pre-heating said optical source before said optical source is caused to emit optical radiation,

wherein said control circuitry is arranged to:

generate a modulation current to modulate said optical source to produce data transmission via said optical radiation, so that said optical source has an extinction ratio defined as the ratio of the power of said optical radiation when said optical radiation source is modulated to produce 1 and 0 logical values, respectively;

control said extinction ratio; and

at least temporarily discontinue control of the power generated by said optical radiation source to permit control of said extinction ratio.

29. A system comprising:

an optical radiation source;

control circuitry to control the temperature of said optical source, wherein said circuitry includes heating means for pre-heating said optical source before said optical source is caused to emit optical radiation; and

wherein said control circuitry is arranged to:

increase the power of said optical radiation generated by said optical source up to a final optical power value;

increase the temperature of said optical radiation source up to a final temperature value;

perform a wavelength control function of said optical source to control the wavelength of said optical radiation generated by said optical source after said final optical power and temperature values are reached; and

disable temperature control when said wavelength control function is enabled;

the system including a memory for storing the value of at least one operating parameter of said optical radiation source during operation, wherein said control circuitry is arranged to turn on said optical radiation source as a function of said at least one value stored in said memory.

30. The system of claim 29 , wherein said optical radiation source comprises a laser diode.

31. The system of claim 29 , further comprising at least one of:

a temperature conditioning element for controlling the temperature of said optical source; and

a current driver to selectively control the intensity of current flowing through said optical source.

32. The system of claim 31 , wherein said temperature conditioning element is used as the heater for heating said optical source to said initial temperature.

33. A system comprising:

an optical radiation source;

control circuitry to control the temperature of said optical source, wherein said circuitry includes heating means for pre-heating said optical source before said optical source is caused to emit optical radiation; and

a memory for storing the value of at least one operating parameter of said optical radiation source during operation, wherein said control circuitry is arranged to turn on said optical radiation source as a function of said at least one value stored in said memory,

wherein said control circuitry is arranged to update said at least one value stored in said memory in order to compensate for ageing phenomena affecting said optical radiation source.

34. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation by heating said optical source to an initial temperature using a heater and subsequently heating said optical source by causing a current to flow through said optical source,

wherein said initial temperature is a function of at least one parameter selected from the group consisting of a minimum current value, a temperature to be reached by said optical source during operation, and an estimation of the intensity of the current flowing through said optical source in emitting said radiation during operation,

controlling the temperature of said optical source during said pre-heating as a function of a target temperature,

wherein optical radiation is emitted as a result of current flowing through said optical source,

generating a modulation current to modulate said optical source to produce data transmission via said optical radiation, so that said optical source has an extinction ratio defined as the ratio of the power of said optical radiation when said optical radiation source is modulated to produce 1 and 0 logical values, respectively;

controlling said extinction ratio; and

at least temporarily discontinuing control of the power generated by said optical radiation source to permit control of said extinction ratio.

35. A method for turning on an optical radiation source, said optical source having associated therewith control circuitry to control the temperature of said optical source, the method comprising:

pre-heating said optical source before said optical source is caused to emit optical radiation;

storing the value of at least one operating parameter of said optical radiation source during operation;

implementing said method for turning on said optical radiation source as a function of said at least one value stored;

generating a modulation current to modulate said optical source to produce data transmission via said optical radiation, so that said optical source has a extinction ratio defined as the ratio of the power of said optical radiation when said optical radiation source is modulated to produce 1 and 0 logical values, respectively

controlling said extinction ratio; and

at least temporarily discontinuing control of the power generated by said optical radiation source to permit control of said extinction ratio.

36. A system comprising:

an optical radiation source; and

control circuitry to control the temperature of said optical source, wherein said circuitry includes heating means for pre-heating said optical source before said optical source is caused to emit optical radiation,

wherein said optical source emits said optical radiation as a result of current flowing through said optical source,

wherein said control circuitry is arranged to pre-heat said optical source by:

heating said optical source to an initial temperature using a heater; and

subsequently heating said optical source by causing a current to flow through said optical source,

wherein said control circuitry is arranged to control the temperature of said optical source during said pre-heating as a function of a target temperature,

wherein said control circuitry is further arranged to:

generate a modulation current to modulate said optical source to produce data transmission via said optical radiation, so that said optical source has an extinction ratio defined as the ratio of the power of said optical radiation when said optical radiation source is modulated to produce 1 and 0 logical values, respectively;

control said extinction ratio; and

at least temporarily discontinue control of the power generated by said optical radiation source to permit control of said extinction ratio.

37. A system comprising:

an optical radiation source;

control circuitry to control the temperature of said optical source, wherein said circuitry includes heating means for pre-heating said optical source before said optical source is caused to emit optical radiation,

wherein said control circuitry is further arranged to:

generate a modulation current to modulate said optical source to produce data transmission via said optical radiation, so that said optical source has an extinction ratio defined as the ratio of the power of said optical radiation when said optical radiation source is modulated to produce 1 and 0 logical values, respectively;

control said extinction ratio; and

at least temporarily discontinue control of the power generated by said optical radiation source to permit control of said extinction ratio;

the system including a memory for storing the value of at least one operating parameter of said optical radiation source during operation, wherein said control circuitry is arranged to turn on said optical radiation source as a function of said at least one value stored in s id memory.

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