IP Library Granted Patent US 8,004,266
Granted Patent B2
US 8,004,266 · App. 12/470,932 · Granted Aug 23, 2011

Chopper stabilized bandgap reference circuit and methodology for voltage regulators

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Quick Facts
Patent No.
US 8,004,266
App. No.
12/470,932
Granted
Aug 23, 2011
Kind
B2
Abstract

A chopper stabilized bandgap voltage reference circuit comprises current mirror circuitry mirroring first and second currents into first and second networks to generate a forward diode voltage signal and a PTAT (proportional to absolute temperature) component signal, and a third current having a derived temperature coefficient into a third network to generate a reference voltage signal for a regulator. An amplifier amplifies a differential signal of the forward diode voltage signal and the PTAT component signal to output a fourth current to control the first and second currents. According to a chopper clock, a modulator modulates the differential signal to be supplied to the amplifier and a demodulator demodulates the fourth current. A gain loop compensation circuit is coupled to the demodulator to compensate the amplifier, and filter the fourth current for noise components, and a bypass circuit is also provided to the third network for filtering the third current.

Claims (40)

1. A current mode chopper stabilized bandgap voltage reference circuit for a regulator comprising:

current mirror circuitry configured for mirroring first and second currents into first and second networks to generate a forward diode voltage signal and a PTAT (proportional to absolute temperature) component signal, respectively, and a third current having a derived temperature coefficient based on the first and second currents into a third network to generate a reference voltage signal to be supplied to the regulator;

an amplifier configured for amplifying a differential signal of the forward diode voltage signal and the PTAT component signal to output a fourth current to control the first and second currents in the first and second diode networks;

a modulator coupled between the current mirror circuitry and the amplifier, synchronized to a chopper clock, and configured for modulating the differential signal to be supplied to the amplifier;

a demodulator coupled to the amplifier, synchronized to the chopper clock, and configured for demodulating the fourth current;

a gain loop compensation circuit coupled to the demodulator to compensate the amplifier, and filter the fourth current for noise components; and

a bypass circuit provided to the third network for filtering the third current.

2. The chopper stabilized bandgap voltage reference circuit according to claim 1 , wherein

the first network includes a first current mirror, a first pn junction device coupled to the first current mirror, a first shunt resistor coupled to the first current mirror in parallel with the first pn junction device, and a first node coupling the first pn junction device and the first shunt resistor to the first current mirror,

the second network includes a second current mirror, a second resistor coupled to the second current mirror, a second pn junction device coupled to the second resistor in series, a second shunt resistor coupled to the second current mirror in parallel with the second resistor and the second pn junction device, and a second node coupling the second resistor and the second shunt resistor to the second current mirror, the differential signal being obtained based on voltages at the first and second nodes,

the third network includes a third current mirror, a second resistor, and an output node between the third current mirror and the second resistor, and

the bypass circuit is coupled to the output node and is parallel with the second resistor.

3. The chopper stabilized bandgap voltage reference circuit according to claim 1 , further comprising a low pass filter coupled to the output node for filtering the reference voltage signal.

4. The chopper stabilized bandgap voltage reference circuit according to claim 1 , wherein the compensating circuit includes a capacitor to create a pole that is lower than fc/2, where fc is a chopper clock frequency.

5. The chopper stabilized bandgap voltage reference circuit according to claim 1 , wherein

the first network includes a first current mirror, a first pn junction device coupled to the first current mirror, a first shunt resistor coupled to the first current mirror in parallel with the first pn junction device, and a first node coupling the first pn junction device and the first shunt resistor to the first current mirror,

the second network includes a second current mirror, a second resistor coupled to the second current mirror, a second pn junction device coupled to the second resistor in series, a second shunt resistor coupled to the second current mirror in parallel with the second resistor and the second pn junction device, and a second node coupling the second resistor and the second shunt resistor to the second current mirror, the differential signal being obtained based on voltages at the first and second nodes, and

the third network comprises N (N>1) third networks each including a third current mirror, a second resistor, and an output node between the third current mirror and the second resistor to provide the reference voltage signal to the regulator, the second resistor having a value different from that of another third network, the output node having the bypass circuit which is parallel with the second resistor.

6. The chopper stabilized bandgap voltage reference circuit according to claim 5 , wherein the reference voltage signal is selectively drawn from one of output nodes in the N third networks.

7. The chopper stabilized bandgap voltage reference circuit according to claim 1 , wherein the current mirror circuitry further comprises a curvature correction circuit for compensating for a temperature deviation.

8. The chopper stabilized bandgap voltage reference circuit according to claim 2 , wherein the current mirror circuitry includes a gain loop having a curvature correction circuit for compensating for a temperature deviation, the curvature correction circuit comprising:

a first positive temperature coefficient resistor serially coupled to the first shunt resistor in the first network, and

a second positive temperature coefficient resistor serially coupled to the second shunt resistor in the second network.

9. The chopper stabilized bandgap voltage reference circuit according to claim 8 , wherein the curvature correction circuit further comprises a negative temperature coefficient resistor coupled between the second resistor and the second pn junction device in the second network.

10. The chopper stabilized bandgap voltage reference circuit according to claim 5 , wherein the current mirror circuitry further comprises a curvature correction circuit for compensating for a temperature deviation, the curvature correction circuit comprising:

a first positive temperature coefficient resistor serially coupled to the first shunt resistor in the first network, and

a second positive temperature coefficient resistor serially coupled to the second shunt resistor in the second network.

11. The chopper stabilized bandgap voltage reference circuit according to claim 10 , wherein the curvature correction circuit further comprises a negative temperature coefficient resistor coupled between the second resistor and the second pn junction device in the second network.

12. The chopper stabilized bandgap voltage reference circuit according to claim 1 , wherein the chopper clock is variable.

13. The chopper stabilized bandgap voltage reference circuit according to claim 1 , the chopper clock is dithered or applied in a form of spectral spreading.

14. The chopper stabilized bandgap voltage reference circuit according to claim 1 , wherein the regulator is one of a linear regulator and a switching regulator.

15. A method for generating a bandgap reference voltage signal for a regulator, comprising the steps of:

mirroring first and second currents into first and second networks in current mirror circuitry to generate a forward diode voltage signal and a PTAT (proportional to absolute temperature) component signal, respectively, and a third current having a derived temperature coefficient based on the first and second currents into a third network of the current mirror circuitry to generate a reference voltage signal to be supplied to the regulator;

modulating, synchronized to a chopper clock, a differential signal of the forward diode voltage and the PTAT component signal from the current mirror circuitry;

amplifying, by an amplifier, the modulated signal to output a fourth current;

demodulating, synchronized to the chopper clock, the fourth current;

compensating the fourth current for noise components;

controlling the first and second currents in the first and second networks based on the compensated fourth current; and

filtering the third current in the third network of the current mirror circuitry.

16. The method according to claim 15 , further including the step of performing, by the current mirror circuitry, a curvature correction for compensating for a temperature deviation.

Assignments (3)
CHANGE OF NAME Recorded Sep 4, 2021
From: LINEAR TECHNOLOGY CORPORATION
To: LINEAR TECHNOLOGY LLC
Reel/Frame 057420/0676 →
CHANGE OF NAME Recorded Sep 4, 2021
From: LINEAR TECHNOLOGY LLC
To: ANALOG DEVICES INTERNATIONAL UNLIMITED COMPANY
Reel/Frame 057422/0180 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 22, 2009
From: CONSOER, KELLY JOEL
To: LINEAR TECHNOLOGY CORPORATION
Reel/Frame 022726/0380 →