Claims
- 1. A band gap reference circuit coupled to a source of bias current, the band gap reference circuit comprising:
an amplifier comprising a differential pair of first and second bipolar junction transistors; a first circuit comprising a first P-N junction coupled to the first bipolar junction transistor; a second circuit comprising a second P-N junction coupled to the second bipolar junction transistor; a first resistor coupled to the first circuit; a second resistor coupled to the first resistor and the second circuit; and a feedback circuit coupled to the amplifier and to the source of bias current.
- 2. The band gap reference circuit of claim 1 wherein the first and second bipolar junction transistors are PNP transistors.
- 3. The band gap reference circuit of claim 1 wherein the band gap reference circuit provides an output voltage at the base of the first bipolar junction transistor that is substantially constant over a range of temperatures.
- 4. The band gap reference circuit of claim 1 wherein the band gap reference circuit provides an output voltage at the base of the first bipolar junction transistor that is substantially constant over a range of the bias current.
- 5. The band gap reference circuit of claim 1 wherein the first circuit comprises two bipolar junction transistors coupled together; and the second circuit comprises two bipolar junction transistors coupled together.
- 6. The band gap reference circuit of claim 5 wherein the first circuit comprises three emitter follower coupled bipolar junction transistors; and the second circuit comprises three emitter follower coupled bipolar junction transistors.
- 7. The band gap reference circuit of claim 6 wherein the three emitter follower coupled bipolar junction transistors of the first circuit are PNP transistors; and the three emitter follower coupled bipolar junction transistors of the second circuit are PNP transistors.
- 8. The band gap reference circuit of claim 6 wherein each of the three emitter follower bipolar junction transistors of the first circuit have base-emitter junction areas that are eight times the base-emitter junction areas of the three emitter follower bipolar junction transistors of the second circuit.
- 9. The band gap reference circuit of claim 1 wherein the first circuit comprises three diodes coupled in series; and the second circuit comprises three diodes coupled in series.
- 10. The band gap reference circuit of claim 1 the first circuit comprises two emitter follower coupled bipolar junction transistors coupled to a first diode; and the second circuit comprises two emitter follower coupled bipolar junction transistors coupled to a second diode.
- 11. The band gap reference circuit of claim 1 wherein the feedback circuit comprises a fifth transistor coupled to the amplifier.
- 12. The band gap reference circuit of claim 11 wherein the feedback circuit comprises a diode coupled sixth bipolar junction transistor coupled to the fifth transistor.
- 13. The band gap reference circuit of claim 1 wherein the first circuit comprises three NPN bipolar junction transistors coupled together; and the second circuit comprises three NPN bipolar junction transistors coupled together.
- 14. The band gap reference circuit of claim 1 wherein first transistor has a base-emitter junction area that is eight times the base-emitter junction area of the second transistor.
- 15. The band gap reference circuit of claim 1 wherein the amplifier, the first and second circuits, the first and second resistors, and the feedback circuit all receive bias current from a current source.
- 16. A method for providing a output reference voltage, the method comprising:
providing the output reference voltage using a first P-N junction and a first resistor; providing a second voltage using a second P-N junction and a second resistor coupled to the first resistor; comparing the output reference voltage to the second voltage using a differential pair comprising first and second bipolar junction transistors; and regulating the current through a feedback circuit coupled to the differential pair to compensate for variations in current through the first and second resistors.
- 17. The method of claim 16 wherein the first and second bipolar junction transistors are PNP transistors.
- 18. The method of claim 16 wherein providing the output reference voltage using the first P-N junction and the first resistor further comprises providing the output reference voltage across the first resistor and third and fourth emitter follower coupled bipolar junction transistors; and
providing the second voltage using the second P-N junction and the second resistor further comprises providing the second voltage across the second resistor and fifth and sixth emitter follower coupled bipolar junction transistors.
- 19. The method of claim 18 wherein providing the output reference voltage using the first P-N junction and the first resistor further comprises providing the output reference voltage across the first resistor and the third, the fourth, and a seventh emitter follower coupled bipolar junction transistors; and
providing the second voltage using the second P-N junction and the second resistor further comprises providing the second voltage across the second resistor and the fifth, the sixth, and an eighth emitter follower coupled bipolar junction transistors.
- 20. The method of claim 19 wherein each of the third, fourth, and seventh bipolar junction transistors have base-emitter junction areas that are eight times the base-emitter junction areas of each of the fifth, sixth, and eighth bipolar junction transistors
- 21. The method of claim 16 wherein providing the output reference voltage using the first P-N junction and the first resistor further comprises providing the output reference voltage across the first resistor and first and second diodes coupled in series; and
providing the second voltage using the second P-N junction and the second resistor further comprises providing the second voltage across the second resistor and third and fourth diodes coupled in series.
- 22. The method of claim 21 wherein providing the output reference voltage using the first P-N junction and the first resistor further comprises providing the output reference voltage across the first resistor and the first, the second and a fifth diodes coupled in series; and
providing the second voltage using the second P-N junction and the second resistor further comprises providing the second voltage across the second resistor and the third, the fourth, and a sixth diodes coupled in series.
- 23. The method of claim 16 wherein the feedback circuit comprises a MOSFET that regulates its drain-source current.
- 24. The method of claim 23 wherein the MOSFET is coupled to a diode coupled fifth bipolar junction transistor.
- 25. The method of claim 16 wherein the differential pair is coupled to a current mirror circuit.
- 26. The method of claim 16 wherein the output reference voltage is substantially constant over a range of temperature.
- 27. The method of claim 16 wherein regulating the current through the feedback circuit further comprises regulating the current through the feedback circuit so that the current through the first and second resistors remains substantially constant over a range of current from a bias current source.
- 28. The method of claim 16 wherein comparing the output reference voltage to the second voltage using a differential pair further comprises supplying current to the differential pair from a current source.
- 29. A band gap reference circuit coupled to a source of bias current, the band gap reference circuit comprising:
an amplifier comprising a differential pair of first and second bipolar junction transistors; a first circuit comprising a first plurality of emitter follower coupled bipolar junction transistors; a second circuit comprising a second plurality of emitter follower coupled bipolar junction transistors; a first resistor coupled to the first circuit; a second resistor coupled to the first resistor and the second circuit; and a feedback circuit coupled to the amplifier and to the source of bias current.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application claims priority from U.S. Provisional Patent Application No. 60/220,068, filed Jul. 21, 2000, which is incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60220068 |
Jul 2000 |
US |