IP Library Granted Patent US 7,315,210
Granted Patent B2
US 7,315,210 · App. 11/299,279 · Granted Jan 1, 2008

Differential operational amplifier

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Quick Facts
Patent No.
US 7,315,210
App. No.
11/299,279
Granted
Jan 1, 2008
Kind
B2
Abstract

The input stage of an operational amplifier includes at least four signal-receiving stages adapted to receive four primary input signals. If the voltage level associated with any of the input signal changes, at least one transistor in each of the at least four signal-receiving stages conducts more current and at least one transistor in each of these stages conducts less current. The four signal-receiving stages collectively generate at least four intermediate signals that are delivered to the output stage of the differential amplifier, which in response, generates a pair of differential output signals. Two of the input signals are derived from the pair of differential output signals and are fed back to control the amplifier.

Claims (41)

1. An operational amplifier comprising:

an output stage having a pair of output terminals adapted to carry a pair of differential output signals; and

an input stage coupled to the output stage, said input stage further comprising at least four signal-receiving stages having at least four input terminals adapted to receive at least four input signals, wherein in response to the at least four input signals, at least one transistor in each of the at least four signal-receiving stages conducts more current and at least another one transistor in each of the at least four signal-receiving stages conducts less current, wherein each of the at least four signal-receiving stages is configured to generate a pair of differential signals, wherein at least two of the input signals are feedback signals that are derived from the pair of differential output signals.

2. The operational amplifier of claim 1 wherein each of the at least four signal-receiving stages includes a source-coupled pair amplifier coupled to either a current source or a current sink.

3. The operational amplifier of claim 2 wherein two of the source-coupled pair amplifiers include NMOS transistors, and two of the source-coupled pair amplifiers include PMOS transistors.

4. The operational amplifier of claim 3 wherein each of the at least four input signals is applied to a gate terminal of an NMOS transistor of the source-coupled pair amplifier disposed in one of the at least four signal-receiving stages as well as to a gate terminal of a PMOS transistor of the source-coupled pair amplifier disposed in another one of the at least four signal-receiving stages.

5. The operational amplifier of claim 4 further comprising a fifth input terminal operative to receive a common-mode signal adapted to set a common mode gain of the operational amplifier.

6. The operational amplifier of claim 5 further comprising:

a first resistor coupled between a first one of the output terminals and the input terminal receiving a first one of the feedback signals;

a second resistor coupled between a second one of the output terminals and the input terminal receiving a second one of the feedback signals; and

a third resistor coupled between the first one of the input terminals and the second one of the input terminals.

7. The operational amplifier of claim 5 further comprising:

a first resistor coupled between a first one of the output terminals and the input terminal receiving a first one of the feedback signals;

a second resistor coupled between a second one of the output terminals and the input terminal receiving a second one of the feedback signals; and

a third resistor coupled to the input terminal receiving the first one of the feedback signals; and

a fourth resistor coupled to the input terminal receiving the second one of the feedback signals.

8. The operational amplifier of claim 5 further comprising:

a first resistor coupled between a first one of the output terminals and the input terminal receiving a first one of the feedback signals;

a second resistor coupled between a second one of the output terminals and the input terminal receiving a second one of the feedback signals; and

a third resistor coupled to the input terminal receiving the first one of the feedback signals;

a fourth resistor coupled to the input terminal receiving the second one of the feedback signals; and wherein said common-mode signal is also applied to the remaining two input signals that are not feedback signals.

9. A method of amplifying signals comprising:

receiving four input signals;

modifying a current flowing through at least one of first, second, third and fourth signal-receiving stages in response to changes in at least one of the four input signals to thereby deliver four intermediate signals to an output stage;

generating a pair of differential output signals in response to the delivery of the four intermediate signals, each of the differential output signals being applied to a different node of an output stage, wherein at least two of the input signals are feedback signals that are derived from the pair of differential output signals.

10. The method of claim 9 wherein each of the at least four signal-receiving stages includes a source-coupled pair amplifier coupled to either a current source or a current sink.

11. The method of claim 10 wherein two of the source-coupled pair amplifiers include NMOS transistors, and two of the source-coupled pair amplifiers include PMOS transistors.

12. The method of claim 11 wherein each of the at least four input signals is applied to a gate terminal of an NMOS transistor of the source-coupled pair amplifier disposed in one of the at least four signal-receiving stages as well as to a gate terminal of a PMOS transistor of the source-coupled pair amplifier disposed in another one of the at least four signal-receiving stages.

13. The method of claim 12 further comprising:

receiving a fifth input signal adapted to set a common mode gain of the amplification.

14. The method of claim 13 further comprising:

applying a first one of the feedback signals and a first one of the pair of differential signals to first and second terminals of a first resistor;

applying a second one of the feedback signals and a second one of the pair of differential signals to first and second terminals of a second resistor; and

applying the first one and second one of the feedback signals to first and second terminals of a third resistors.

15. The method of claim 13 further comprising:

applying a first one of the feedback signals and a first one of the pair of differential signals to first and second terminals of a first resistor;

applying a second one of the feedback signals and a second one of the pair of differential signals to first and second terminals of a second resistor;

applying the first one of the feedback signals to a third resistor; and

applying the second one of the feedback signals to a fourth resistor.

16. The method of claim 15 further comprising:

applying the fifth input signal to the remaining two input signals that are not feedback signals.

Assignments (7)
SECURITY AGREEMENT Recorded Jul 9, 2021
From: MAXLINEAR, INC.; MAXLINEAR COMMUNICATIONS, LLC; EXAR CORPORATION
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 056816/0089 →
RELEASE OF SECURITY INTEREST Recorded Jun 23, 2021
From: MUFG UNION BANK, N.A.
To: MAXLINEAR, INC.; EXAR CORPORATION; MAXLINEAR COMMUNICATIONS LLC
Reel/Frame 056656/0204 →
SUCCESSION OF AGENCY (REEL 042453 / FRAME 0001) Recorded Jul 1, 2020
From: JPMORGAN CHASE BANK, N.A.
To: MUFG UNION BANK, N.A.
Reel/Frame 053115/0842 →
MERGER AND CHANGE OF NAME Recorded Oct 4, 2017
From: EAGLE ACQUISITION CORPORATION; EXAR CORPORATION; EXAR CORPORATION
To: EXAR CORPORATION
Reel/Frame 044126/0634 →
SECURITY AGREEMENT Recorded May 12, 2017
From: MAXLINEAR, INC.; ENTROPIC COMMUNICATIONS, LLC (F/K/A ENTROPIC COMMUNICATIONS, INC.); EXAR CORPORATION
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 042453/0001 →
RELEASE OF SECURITY INTEREST Recorded Mar 9, 2015
From: STIFEL FINANCIAL CORP.
To: EXAR CORPORATION; CADEKA MICROCIRCUITS, LLC
Reel/Frame 035168/0384 →
SECURITY INTEREST Recorded May 29, 2014
From: EXAR CORPORATION; CADEKA MICROCIRCUITS, LLC
To: STIFEL FINANCIAL CORP.
Reel/Frame 033062/0123 →