IP Library Granted Patent US 12,597,896
Granted Patent B2
US 12,597,896 · App. 17/931,947 · Granted Apr 7, 2026

Slew-rate boost circuitry

Inventors: Catalin Ionut Petroianu (Bucharest, RO); Alexandra-Oana Petroianu (Bucharest, RO)
Assignee: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
H03F3/45273H03F3/45475H03F2203/45248
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Quick Facts
Patent No.
US 12,597,896
App. No.
17/931,947
Granted
Apr 7, 2026
Kind
B2
Abstract

The techniques described herein relate to a circuit including an operational amplifier that includes a differential amplifier, a capacitor, and an output stage. The differential amplifier includes a first input and a second input. The output stage is configured to generate an output voltage. The circuit includes a slew-rate boost circuitry connected to the operational amplifier. The slew-rate boost circuitry is configured to detect a voltage differential between the first input and the second input and apply, at an output of the differential amplifier, a boost current to charge the capacitor during a period of time in which the output voltage increases or decreases to a target voltage level.

Claims (40)

1 . A circuit comprising:

an operational amplifier including a differential amplifier, a capacitor, and an output stage, the output stage configured to generate an output voltage; and

a slew-rate boost circuitry connected to the operational amplifier and including a first boost transistor connected to a first output of the differential amplifier and a second boost transistor connected to a second output of the differential amplifier, the slew-rate boost circuitry is configured to:

detect a voltage differential between a first input of the differential amplifier and a second input of the differential amplifier; and

apply, at an output of the differential amplifier, a boost current to charge the capacitor during a period of time in which the output voltage changes from a first voltage level to a second voltage level, the boost current being generated by the first boost transistor and the second boost transistor.

2 . The circuit of claim 1 , wherein the slew-rate boost circuitry is configured to:

in response to the output voltage achieving the second voltage level, remove the boost current.

3 . The circuit of claim 1 , wherein the slew-rate boost circuitry is connected to the first input of the differential amplifier and the second input of the differential amplifier.

4 . The circuit of claim 1 , wherein, the first output of the differential amplifier is connected to the output stage, the second output of the differential amplifier is connected to the output stage.

5 . The circuit of claim 1 , wherein a gate of the first boost transistor is connected to a gate of the second boost transistor.

6 . The circuit of claim 1 , wherein the slew-rate boost circuitry includes a differential voltage detector configured to detect the voltage differential.

7 . The circuit of claim 1 , wherein the capacitor is connected in parallel with the output stage.

8 . The circuit of claim 1 , wherein the boost current is a first boost current, the slew-rate boost circuitry including a first control circuitry configured to:

detect that the voltage differential between the first input and the second input exceeds a first voltage threshold; and

apply, at the output of the differential amplifier, the first boost current to charge the capacitor during a first period of time in which the output voltage increases from the first voltage level to the second voltage level.

9 . The circuit of claim 8 , wherein the slew-rate boost circuitry includes a second control circuitry configured to:

detect that the voltage differential between the first input and the second input exceeds a second voltage threshold; and

apply, at the output of the differential amplifier, a second boost current to charge the capacitor during a second period of time in which the output voltage decreases from the second voltage level to the first voltage level.

10 . A circuit comprising:

an operational amplifier including a differential amplifier, a capacitor, and an output stage, the output stage configured to generate an output voltage;

a first control circuitry including a first boost transistor connected to a first output of the differential amplifier and a second boost transistor connected to a second output of the differential amplifier, the first control circuitry configured to:

apply, at an output of the differential amplifier, a first boost current to charge the capacitor during a first period of time in which the output voltage changes from a first voltage level to a second voltage level, the first boost current being generated by the first boost transistor and the second boost transistor; and

a second control circuitry configured to apply, at the output of the differential amplifier, a second boost current to charge the capacitor during a second period of time in which the output voltage changes from the second voltage level to the first voltage level.

11 . The circuit of claim 10 , wherein the differential amplifier includes a first input and a second input, the first control circuitry configured to detect a first voltage differential between the first input and the second input, wherein, in response to the first voltage differential being detected, the first control circuitry is configured to apply the first boost current.

12 . The circuit of claim 11 , wherein the second control circuitry is configured to detect a second voltage differential between the first input and the second input, wherein, in response to the second voltage differential being detected, the second control circuitry is configured to apply the second boost current.

13 . The circuit of claim 10 , wherein the first boost current is not applied during the second period of time, and the second boost current is not applied during the first period of time.

14 . The circuit of claim 10 , wherein the differential amplifier includes a first input and a second input, the first control circuitry being connected to the first input and the second input, the second control circuitry being connected to the first input and the second input.

15 . The circuit of claim 10 , wherein the first output of the differential amplifier is connected to the output stage, the second output of the differential amplifier being connected to the output stage, the first control circuitry being connected to the first output and the second output, the second control circuitry being connected to the first output and the second output.

16 . The circuit of claim 12 , wherein the first control circuitry includes a first differential voltage detector configured to detect the first voltage differential, the second control circuitry including a second differential voltage detector configured to detect the second voltage differential.

17 . A method for increasing a slew-rate of an operational amplifier, the method comprising:

detecting a first voltage differential between a first input of a differential amplifier and a second input of the differential amplifier;

generating a first boost current using a first boost transistor and a second boost transistor, the first boost transistor being connected to a first output of the differential amplifier, the second boost transistor being connected to a second output of the differential amplifier;

applying, at an output of the differential amplifier, the first boost current to charge a capacitor during a first period of time in which an output voltage changes from a first voltage level to a second voltage level;

detecting a second voltage differential between the first input and the second input; and

applying, at the output of the differential amplifier, a second boost current to charge the capacitor during a second period of time in which the output voltage changes from the second voltage level to the first voltage level.

18 . The method of claim 17 , further comprising:

removing the first boost current in response to expiration of the first period of time; and

removing the second boost current in response to the output voltage achieving the first voltage level.

19 . The method of claim 17 , wherein the first boost current is not applied during the second period of time, and the second boost current is not applied during the first period of time.

20 . The circuit of claim 1 , wherein the capacitor is connected between an input of the output stage and an output of the output stage.

Assignments (3)
RELEASE OF SECURITY INTEREST IN PATENTS RECORDED AT REEL 061879, FRAME 0655 Recorded Jun 23, 2023
From: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
To: FAIRCHILD SEMICONDUCTOR CORPORATION; SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
Reel/Frame 064123/0001 →
SECURITY INTEREST Recorded Nov 3, 2022
From: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 061879/0655 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 14, 2022
From: PETROIANU, CATALIN IONUT; PETROIANU, ALEXANDRA-OANA
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
Reel/Frame 061088/0816 →
Continuity (1)
Related Publication 20240088853A1 · Mar 14, 2024
References Cited (6)
US 5317281A · Mnn et al. · 1994 [cited by applicant]
US 7362173B1 · Knausz · 2008 [cited by examiner]
US 20020109547A1 · Ivanov et al. · 2002 [cited by applicant]
US 20050285676A1 · Jones · 2005 [cited by examiner]
Extended European Search Report for counterpart EP application No. 23191905.1, dated Mar. 7, 2024, 9 pages. [cited by applicant]
Vadim Ivanov et al., “250 MHz CMOS Rail-to-Rail IO OpAmp; Structural Design Approach,” IEEE Xplore, 2022. [cited by applicant]