IP Library Granted Patent US 7,436,261
Granted Patent B2
US 7,436,261 · App. 11/723,864 · Granted Oct 14, 2008

Operational amplifier

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Quick Facts
Patent No.
US 7,436,261
App. No.
11/723,864
Granted
Oct 14, 2008
Kind
B2
Abstract

An operational amplifier includes: a differential amplifier circuit configured to receive an inverting input voltage (VIN−) and a non-inverting input voltage (VIN+); and an auxiliary circuit for improving a slew rate of an output voltage of the differential amplifier circuit, wherein when a voltage difference between the inverting input voltage (VIN−) and the non-inverting input voltage (VIN+) is less than a predetermined small voltage difference, an output terminal of the auxiliary circuit is disconnected from an output terminal of the differential amplifier circuit, and when the voltage difference exceeds the predetermined small voltage difference so that a voltage waveform is shifted to at least one direction, the voltage shift is accelerated by receiving/transferring a current from/to the output terminal of the differential amplifier circuit toward a shifting direction of an output voltage of the differential amplifier circuit.

Claims (37)

1. An operational amplifier, comprising:

a differential amplifier circuit configured to receive an inverting input voltage (VIN−) and a non-inverting input voltage (VIN+); and

an auxiliary circuit for improving a slew rate of an output voltage of the differential amplifier circuit,

wherein when a voltage difference between the inverting input voltage (VIN−) and the non-inverting input voltage (VIN+) is less than a predetermined small voltage difference, an output terminal of the auxiliary circuit is disconnected from an output terminal of the differential amplifier circuit, and when the voltage difference between the inverting input voltage (VIN−) and the non-inverting input voltage (VIN+) exceeds the predetermined small voltage difference so that a voltage waveform is shifted to at least one direction, the voltage shift is accelerated by receiving/transferring a current from/to the output terminal of the differential amplifier circuit toward a shifting direction of an output voltage of the differential amplifier circuit.

2. The operational amplifier as recited in claim 1 , wherein the auxiliary circuit includes:

a comparator configured to receive the inverting input voltage (VIN−) and the non-inverting input voltage (VIN+); and

a current mirror implemented with a pair of transistors and driven by an output of the comparator, and one of the pair of the transistors that is not connected to the output terminal of the comparator has a drain connected to the output terminal of the differential amplifier circuit.

3. The operational amplifier as recited in claim 2 , wherein the comparator includes:

a differential transistor pair implemented with a pair of transistors of a first conductivity type whose sources are connected to each other, the differential transistor pair having a non-inverting input terminal and an inverting input terminal;

a constant current source implemented with a transistor of the first conductivity type connected to the sources of the pair of the transistors; and

a current mirror implemented with a pair of transistors, the current mirror forming a load of the differential transistor pair, the pair of the transistors of the current mirror having a second conductivity type different from the first conductivity type of the differential transistor pair of the comparator.

4. The operational amplifier as recited in claim 1 , wherein the auxiliary circuit includes:

a first comparator;

a second comparator implemented with transistors having a conductivity type opposite to those of the first comparator;

a first current mirror circuit driven by the first comparator and connected to a ground voltage terminal (VSS); and

a second current mirror circuit implemented with transistors having a conductivity type opposite to those of the first current mirror and driven by the second comparator, the second current mirror being connected to a power supply voltage terminal (VDD), output terminals of the first and second current mirror circuits being commonly connected to an output terminal of the differential amplifier circuit.

5. The operational amplifier as recited in claim 4 , wherein the first comparator includes:

a first differential transistor pair implemented with a pair of transistors of a first conductivity type whose sources are connected to each other, the first differential transistor pair having a non-inverting input terminal and an inverting input terminal;

a first constant current source implemented with a transistor of the first conductivity type connected to the sources of the pair of the transistors; and

a first current mirror implemented with a pair of transistors, the first current mirror forming a load of the first differential transistor pair, the pair of the transistors of the first current mirror having a second conductivity type different from the first conductivity type of the first differential transistor pair of the comparator.

6. The operational amplifier as recited in claim 5 , wherein the second comparator includes:

a second differential transistor pair implemented with a pair of transistors of the second conductivity type whose sources are connected to each other, the second differential transistor pair having a non-inverting input terminal and an inverting input terminal;

a second constant current source implemented with a transistor of the second conductivity type connected to the sources of the pair of the transistors; and

a second current mirror implemented with a pair of transistors, the second current mirror forming a load of the second differential transistor pair, the pair of the transistors of the second current mirror having the first conductivity type.

7. The operational amplifier as recited in claim 1 , wherein the auxiliary circuit includes:

a first comparator configured to receive the inverting input voltage (VIN−) and the non-inverting input voltage (VIN+);

a first current mirror circuit driven by the first comparator and connected to a ground voltage terminal (VSS);

a second comparator configured to receive the inverting input voltage (VIN−) and the non-inverting input voltage (VIN+); and

a second current mirror circuit implemented with transistors having the same conductivity type as those of the first current mirror and driven by the second comparator, the second current mirror being connected to the ground voltage terminal (VSS), output terminals of the first and second current mirror circuits being commonly connected to an output terminal of the differential amplifier circuit.

8. The operational amplifier as recited in claim 7 , wherein the first comparator includes:

a first differential transistor pair implemented with a pair of transistors of a first conductivity type whose sources are connected to each other, the first differential transistor pair having a non-inverting input terminal and an inverting input terminal;

a first constant current source implemented with a transistor of the first conductivity type connected to the sources of the pair of the transistors; and

a first current mirror implemented with a pair of transistors, the first current mirror forming a load of the first differential transistor pair, the pair of the transistors of the first current mirror having a second conductivity type different from the first conductivity type of the first differential transistor pair of the comparator.

9. The operational amplifier as recited in claim 8 , wherein the second comparator includes:

a second differential transistor pair implemented with a pair of transistors of the second conductivity type whose sources are connected to each other, the second differential transistor pair having a non-inverting input terminal and an inverting input terminal;

a second constant current source implemented with a transistor of the second conductivity type connected to the sources of the pair of the transistors; and

a second current mirror implemented with a pair of transistors, the second current mirror forming a load of the second differential transistor pair, the pair of the transistors of the second current mirror having the second conductivity type.

Assignments (6)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 7, 2025
From: MAGNACHIP MIXED-SIGNAL, LTD.
To: MAGNACHIP SEMICONDUCTOR, LTD.
Reel/Frame 071813/0800 →
NUNC PRO TUNC ASSIGNMENT Recorded Mar 14, 2024
From: MAGNACHIP SEMICONDUCTOR, LTD.
To: MAGNACHIP MIXED-SIGNAL, LTD.
Reel/Frame 066878/0875 →
CORRECTIVE ASSIGNMENT TO CORRECT THE RECEIVING PARTY ADDRESS PREVIOUSLY RECORDED AT REEL: 024563 FRAME: 0807. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE BY SECURED PARTY. Recorded Nov 25, 2014
From: US BANK NATIONAL ASSOCIATION
To: MAGNACHIP SEMICONDUCTOR LTD.
Reel/Frame 034469/0001 →
RELEASE OF SECURITY INTEREST Recorded Jun 22, 2010
From: U.S. BANK NATIONAL ASSOCIATION
To: MAGNACHIP SEMICONDUCTOR LTD.
Reel/Frame 024563/0807 →
AFTER-ACQUIRED INTELLECTUAL PROPERTY KUN-PLEDGE AGREEMENT Recorded Feb 18, 2009
From: MAGNACHIP SEMICONDUCTOR, LTD.
To: U.S. BANK NATIONAL ASSOCIATION, AS COLLATERAL TRUSTEE
Reel/Frame 022277/0133 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 17, 2008
From: KAZUYOSHI, SAWADA
To: MAGNACHIP SEMICONDUCTOR, LTD.
Reel/Frame 021575/0501 →