IP Library Granted Patent US 8,035,448
Granted Patent B1
US 8,035,448 · App. 12/832,295 · Granted Oct 11, 2011

Differential amplifier that compensates for process variations

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Quick Facts
Patent No.
US 8,035,448
App. No.
12/832,295
Granted
Oct 11, 2011
Kind
B1
Abstract

A fully differential amplifier includes an input stage and an output stage. The input stage has two differential pairs of n-type input transistors, and two differential pairs of p-type input transistors. The output stage has a first p-type output transistor and a second n-type output transistor, the first p-type output transistor having its source coupled to a first reference voltage node and having its drain coupled to a first output node for a first component of a differential output signal, and the second n-type output transistor having its drain coupled to the first output node and having its source coupled to a second reference voltage node. A p-type input transistor and an n-type input transistor influence operation of the first p-type output transistor such that current conducted by the p-type input transistor and current conducted by the n-type input transistor contribute to the output current conducted by the first p-type output transistor. Similarly, the output current conducted by the second n-type output transistor is influenced by one p-type input transistor and one n-type input transistor.

Claims (95)

1. A differential amplifier comprising:

a first reference voltage node;

a second reference voltage node;

an input stage comprising a first input node for a first component of a differential input signal, a second input node for a second component of the differential input signal, a plurality of first conductivity type input transistors, and a plurality of second conductivity type input transistors, the first conductivity type input transistors having nominally matched operating characteristics and the second conductivity type input transistors having nominally matched operating characteristics;

a first output stage comprising a first second conductivity type output transistor having its source coupled to the first reference voltage node and having its drain coupled to a first output node for a first component of a differential output signal, and comprising a second first conductivity type output transistor having its drain coupled to the first output node and having its source coupled to the second reference voltage node; and

a second output stage comprising a third second conductivity type output transistor having its source coupled to the first reference voltage node and having its drain coupled to a second output node for a second component of the differential output signal, and comprising a fourth first conductivity type output transistor having its drain coupled to the second output node and having its source coupled to the second reference voltage node; wherein

the first conductivity type output transistors have nominally matched operating characteristics;

the second conductivity type output transistors have nominally matched operating characteristics; and

each output transistor conducts a respective output current that includes contributions from at least one of the first conductivity type input transistors and at least one of the second conductivity type input transistors.

2. The differential amplifier of claim 1 , wherein the input stage comprises:

a first second conductivity type input transistor having its gate corresponding to the second input node;

a second second conductivity type input transistor having its gate corresponding to the first input node;

a third second conductivity type input transistor having its gate corresponding to the second input node;

a fourth second conductivity type input transistor having its gate corresponding to the first input node;

a fifth first conductivity type input transistor having its gate corresponding to the second input node;

a sixth first conductivity type input transistor having its gate corresponding to the first input node;

a seventh first conductivity type input transistor having its gate corresponding to the second input node; and

a eighth first conductivity type input transistor having its gate corresponding to the first input node.

3. The differential amplifier of claim 2 , wherein:

the first second conductivity type input transistor is coupled to the second second conductivity type input transistor to form a first second conductivity type differential input pair;

the third second conductivity type input transistor is coupled to the fourth second conductivity type input transistor to form a second second conductivity type differential input pair;

the fifth first conductivity type input transistor is coupled to the sixth first conductivity type input transistor to form a first first conductivity type differential input pair; and

the seventh first conductivity type input transistor is coupled to the eighth first conductivity type input transistor to form a second first conductivity type differential input pair.

4. The differential amplifier of claim 2 , wherein:

current conducted by the first second conductivity type input transistor and current conducted by the eighth first conductivity type input transistor contribute to a first output current conducted by the first second conductivity type output transistor;

current conducted by the fourth second conductivity type input transistor and current conducted by the fifth first conductivity type input transistor contribute to a second output current conducted by the second first conductivity type output transistor;

current conducted by the second second conductivity type input transistor and current conducted by the seventh first conductivity type input transistor contribute to a third output current conducted by the third second conductivity type output transistor; and

current conducted by the third second conductivity type input transistor and current conducted by the sixth first conductivity type input transistor contribute to a fourth output current conducted by the fourth first conductivity type output transistor.

5. The differential amplifier of claim 4 , further comprising:

a first current mirror arrangement coupled to the first second conductivity type output transistor, the first current mirror arrangement configured to mirror the current conducted by the first second conductivity type input transistor, combined with the current conducted by the eighth first conductivity type input transistor, at the first second conductivity type output transistor;

a second current mirror arrangement coupled to the second first conductivity type output transistor, the second current mirror arrangement configured to mirror the current conducted by the fourth second conductivity type input transistor, combined with the current conducted by the fifth first conductivity type input transistor, at the second first conductivity type output transistor;

a third current mirror arrangement coupled to the third second conductivity type output transistor, the third current mirror arrangement configured to mirror the current conducted by the second second conductivity type input transistor, combined with the current conducted by the seventh first conductivity type input transistor, at the third second conductivity type output transistor; and

a fourth current mirror arrangement coupled to the fourth first conductivity type output transistor, the fourth current mirror arrangement configured to mirror the current conducted by the third second conductivity type input transistor, combined with the current conducted by the sixth first conductivity type input transistor, at the fourth first conductivity type output transistor.

6. The differential amplifier of claim 1 , wherein the first conductivity type input transistors and the second conductivity type input transistors have the same transconductance.

7. A differential amplifier comprising:

an input stage comprising a plurality of differential pairs of input transistors having a first conductivity type and a plurality of differential pairs of input transistors having a second conductivity type, the input stage further comprising a first input node and a second input node for a differential input signal;

a first output stage coupled to the input stage, the first output stage comprising a first output transistor having the first conductivity type, and a second output transistor having the second conductivity type, the first output transistor and the second output transistor being stacked such that a first output node for a differential output signal is defined between the first output transistor and the second output transistor;

a second output stage coupled to the input stage, the second output stage comprising a third output transistor having the first conductivity type, and a fourth output transistor having the second conductivity type, the third output transistor and the fourth output transistor being stacked such that a second output node for the differential output signal is defined between the third output transistor and the fourth output transistor; and

a current mirror architecture coupled to the input stage, the first output stage, and the second output stage, the current mirror architecture being configured such that each of the first output transistor, the second output transistor, the third output transistor, and the fourth output transistor conducts a respective current that includes contributions from current conducting in one of the input transistors having the first conductivity type and from current conducting in one of the input transistors having the second conductivity type.

8. The differential amplifier of claim 7 , the input stage comprising:

a first differential pair including a first input transistor having the first conductivity type coupled to a second input transistor having the first conductivity type, the first input node corresponding to a gate of the second input transistor, and the second input node corresponding to a gate of the first input transistor;

a second differential input pair including a third input transistor having the first conductivity type coupled to a fourth input transistor having the first conductivity type, the first input node corresponding to a gate of the fourth input transistor, and the second input node corresponding to a gate of the third input transistor;

a third differential input pair including a fifth input transistor having the second conductivity type coupled to a sixth input transistor having the second conductivity type, the first input node corresponding to a gate of the sixth input transistor, and the second input node corresponding to a gate of the fifth input transistor; and

a fourth differential input pair including a seventh input transistor having the second conductivity type coupled to an eighth input transistor having the second conductivity type, the first input node corresponding to a gate of the eighth input transistor, and the second input node corresponding to a gate of the seventh input transistor.

9. The differential amplifier of claim 8 , wherein:

current conducted by the first input transistor and current conducted by the eighth input transistor contribute to a first output current conducted by the first output transistor;

current conducted by the fourth input transistor and current conducted by the fifth input transistor contribute to a second output current conducted by the second output transistor;

current conducted by the second input transistor and current conducted by the seventh input transistor contribute to a third output current conducted by the third output transistor; and

current conducted by the third input transistor and current conducted by the sixth input transistor contribute to a fourth output current conducted by the fourth output transistor.

10. The differential amplifier of claim 8 , the current mirror architecture comprising:

a first current mirror arrangement coupled to the first output transistor, the first current mirror arrangement configured to mirror the current conducted by the first input transistor, combined with the current conducted by the eighth input transistor, at the first output transistor;

a second current mirror arrangement coupled to the second output transistor, the second current mirror arrangement configured to mirror the current conducted by the fourth input transistor, combined with the current conducted by the fifth input transistor, at the second output transistor;

a third current mirror arrangement coupled to the third output transistor, the third current mirror arrangement configured to mirror the current conducted by the second input transistor, combined with the current conducted by the seventh input transistor, at the third output transistor; and

a fourth current mirror arrangement coupled to the fourth output transistor, the fourth current mirror arrangement configured to mirror the current conducted by the third input transistor, combined with the current conducted by the sixth input transistor, at the fourth output transistor.

11. A differential amplifier comprising:

an input stage comprising two differential pairs of first conductivity type input transistors, and two differential pairs of second conductivity type input transistors; and

a first output stage comprising a first second conductivity type output transistor and a second first conductivity type output transistor, the first second conductivity type output transistor having its source coupled to a first reference voltage node and having its drain coupled to a first output node for a first component of a differential output signal, and the second first conductivity type output transistor having its drain coupled to the first output node and having its source coupled to a second reference voltage node;

wherein a first second conductivity type input transistor and an eighth first conductivity type input transistor of the input stage influence operation of the first second conductivity type output transistor such that current conducted by the first second conductivity type input transistor and current conducted by the eighth first conductivity type input transistor contribute to a first output current conducted by the first second conductivity type output transistor; and

wherein a fourth second conductivity type input transistor and a fifth first conductivity type input transistor of the input stage influence operation of the second first conductivity type output transistor such that current conducted by the fourth second conductivity type input transistor and current conducted by the fifth first conductivity type input transistor contribute to a second output current conducted by the second first conductivity type output transistor.

12. The differential amplifier of claim 11 , further comprising a second output stage comprising a third second conductivity type output transistor and a fourth first conductivity type output transistor, the third second conductivity type output transistor having its source coupled to the first reference voltage node and having its drain coupled to a second output node for a second component of the differential output signal, and the fourth first conductivity type output transistor having its drain coupled to the second output node and having its source coupled to the second reference voltage node;

wherein a second second conductivity type input transistor and a seventh first conductivity type input transistor of the input stage influence operation of the third second conductivity type output transistor such that current conducted by the second second conductivity type input transistor and current conducted by the seventh first conductivity type input transistor contribute to a third output current conducted by the third second conductivity type output transistor; and

wherein a third second conductivity type input transistor and a sixth first conductivity type input transistor of the input stage influence operation of the fourth first conductivity type output transistor such that current conducted by the third second conductivity type input transistor and current conducted by the sixth first conductivity type input transistor contribute to a fourth output current conducted by the fourth first conductivity type output transistor.

13. The differential amplifier of claim 12 , wherein:

the first second conductivity type input transistor is coupled to the second second conductivity type input transistor to form a first second conductivity type differential pair;

the third second conductivity type input transistor is coupled to the fourth second conductivity type input transistor to form a second second conductivity type differential pair;

the fifth first conductivity type input transistor is coupled to the sixth first conductivity type input transistor to form a first first conductivity type differential pair; and

the seventh first conductivity type input transistor is coupled to the eighth first conductivity type input transistor to form a second first conductivity type differential pair.

14. The differential amplifier of claim 11 , further comprising:

a first input node for a first component of a differential input signal; and

a second input node for a second component of the differential input signal; wherein:

the first second conductivity type input transistor has its gate coupled to the second input node;

the eighth first conductivity type input transistor has its gate coupled to the first input node;

the fourth second conductivity type input transistor has its gate coupled to the first input node; and

the fifth first conductivity type input transistor has its gate coupled to the second input node.

15. The differential amplifier of claim 11 , wherein:

the first conductivity type input transistors have nominally matched operating characteristics;

the second conductivity type input transistors have nominally matched operating characteristics;

the first conductivity type output transistors have nominally matched operating characteristics;

the second conductivity type output transistors have nominally matched operating characteristics; and

the first conductivity type input transistors and the second conductivity type input transistors have the same transconductance.

16. The differential amplifier of claim 11 , further comprising a current mirror architecture coupled to the input stage and the first output stage, the current mirror architecture being configured such the first output current is influenced by the first second conductivity type input transistor and the eighth first conductivity type input transistor, and such that the second output current is influenced by the fourth second conductivity type input transistor and the fifth first conductivity type input transistor.

17. The differential amplifier of claim 16 , the current mirror architecture comprising:

a first current mirror arrangement coupled to the first second conductivity type output transistor, the first current mirror arrangement configured to mirror the current conducted by the first second conductivity type input transistor, combined with the current conducted by the eighth first conductivity type input transistor, at the first second conductivity type output transistor; and

a second current mirror arrangement coupled to the second first conductivity type output transistor, the second current mirror arrangement configured to mirror the current conducted by the fourth second conductivity type input transistor, combined with the current conducted by the fifth first conductivity type input transistor, at the second first conductivity type output transistor.

18. The differential amplifier of claim 17 , wherein:

the first current mirror arrangement comprises a first current mirror coupled to the eighth first conductivity type input transistor, and a second current mirror coupled between the first second conductivity type input transistor and the first current mirror;

the first current mirror comprises the first second conductivity type output transistor;

the second current mirror arrangement comprises a third current mirror coupled to the fourth second conductivity type input transistor, and a fourth current mirror coupled between the fifth first conductivity type input transistor and the third current mirror; and

the fourth current mirror comprises the second first conductivity type output transistor.

19. The differential amplifier of claim 18 , wherein:

the first current mirror comprises a second conductivity type mirror transistor having its source coupled to the first reference voltage node, its drain coupled to the eighth first conductivity type input transistor, and its gate coupled to the first second conductivity type output transistor; and

the fourth current mirror comprises an first conductivity type mirror transistor having its source coupled to the second reference voltage node, its drain coupled to the fourth second conductivity type input transistor, and its gate coupled to the second first conductivity type output transistor.

20. The differential amplifier of claim 11 , wherein:

the first reference voltage node corresponds to a supply voltage node; and

the second reference voltage node corresponds to a ground voltage node.

Assignments (17)
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 11759915 AND REPLACE IT WITH APPLICATION 11759935 PREVIOUSLY RECORDED ON REEL 040925 FRAME 0001. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded Feb 17, 2020
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP, B.V. F/K/A FREESCALE SEMICONDUCTOR, INC.
Reel/Frame 052917/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 11759915 AND REPLACE IT WITH APPLICATION 11759935 PREVIOUSLY RECORDED ON REEL 040928 FRAME 0001. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded Jan 17, 2020
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: NXP B.V.
Reel/Frame 052915/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE APPLICATION 11759915 AND REPLACE IT WITH APPLICATION 11759935 PREVIOUSLY RECORDED ON REEL 037486 FRAME 0517. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS. Recorded Dec 10, 2019
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To: NXP B.V.
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