IP Library Granted Patent US 10,394,261
Granted Patent B2
US 10,394,261 · App. 15/890,336 · Granted Aug 27, 2019

Voltage reference generator and a method for controlling a magnitude of a variation of an output voltage of a voltage reference generator

Inventor: Stefano Stanzione (Leuven, BE)
Assignee: STICHTING IMEC NEDERLAND
G05F1/468G05F1/59G05F3/08
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Quick Facts
Patent No.
US 10,394,261
App. No.
15/890,336
Granted
Aug 27, 2019
Kind
B2
Abstract

A voltage reference generator comprises a voltage reference, a variable gain amplifier connected to an output terminal of the voltage reference, a sampling capacitor connected to an output terminal of the voltage reference generator and to an output terminal of the variable gain amplifier via a sampling switch. The switch is adapted to close during a first portion of a switching period, and open during a second portion of the switching period. The voltage reference generator also comprises a ripple monitor adapted to estimate a magnitude of variation of an output voltage of the voltage reference generator resulting from charging and discharging of the sampling capacitor, and based on the estimate, perform one of control of the sampling switch to reduce a switching frequency of the sampling switch to increase a magnitude of the variation of the output voltage, and control of the sampling switch to increase the switching frequency.

Claims (44)

1. A voltage reference generator comprising:

a voltage reference;

a variable gain amplifier connected to an output terminal of the voltage reference;

a sampling capacitor connected to an output terminal of the voltage reference generator and further connected to an output terminal of the variable gain amplifier via a sampling switch of the voltage reference generator, said sampling switch being adapted to alternate between a closed state and an open state, wherein the closed state spans a first portion of a switching period of said sampling switch, and the open state spans a second portion of the switching period; and

a ripple monitor adapted to estimate a magnitude of a variation of an output voltage of the voltage reference generator resulting from the sampling switch alternating between the closed state and the open state, and to, based on the estimate, perform one of:

control of the sampling switch to reduce a switching frequency of the sampling switch to increase the magnitude of the variation of the output voltage, and

control of the sampling switch to increase the switching frequency, to decrease a the magnitude of the variation of the output voltage,

wherein the ripple monitor includes a monitor capacitor connected to the output terminal of the variable gain amplifier via a monitor switch, said monitor switch being adapted to close during a first portion of a switching period of the monitor switch, and the monitor switch being adapted to open during a second portion of the switching period.

2. The voltage reference generator according to claim 1 , wherein the ripple monitor is adapted to compare a variation of a voltage of the monitor capacitor resulting from the monitor switch alternating between the closed state and the open state, to a reference and control the switching frequency of the monitor switch and the sampling switch based on a result of the comparison.

3. The voltage reference generator according to claim 1 , wherein a capacitance of the monitor capacitor is lower than a capacitance of the sampling capacitor.

4. The voltage reference generator according to claim 1 , wherein a switching frequency of the monitor switch of the ripple monitor is lower than the switching frequency of the sampling switch.

5. The voltage reference generator according to claim 1 , wherein the ripple monitor is further adapted to compare a first voltage, based on a voltage of the monitor capacitor, to a second voltage, based on an output of the voltage reference, and to provide a comparison signal indicating a result of the comparison.

6. The voltage reference generator according to claim 5 , wherein the ripple monitor is adapted to, during a first switching period of the monitor switch, form the first voltage by adding a predetermined offset voltage to the voltage of the monitor capacitor, and control the switching frequency of the monitor switch and the sampling switch to increase in response to the comparison signal changing from a high level to a low level during the first switching period.

7. The voltage reference generator according to claim 6 , wherein the ripple monitor is adapted to, during a second switching period subsequent to the first switching period, in response to the comparison signal remaining at the high level at expiry of the first switching period, form the first voltage by subtracting the predetermined offset voltage from the voltage of the monitor capacitor, and thereafter:

control the switching frequency of the monitor switch and the sampling switch to increase in response to the comparison signal changing from a low level to a high level during the second switching period, and

control the switching frequency of the monitor switch and the sampling switch to decrease in response to the comparison signal remaining at a low level during the second switching period.

8. The voltage reference generator according to claim 1 , wherein the ripple monitor, during a loading compensation phase spanning a set of switching periods for the monitor capacitor, is adapted to:

compare a first voltage, based on a voltage of the monitor capacitor, to a second voltage based on an output of the voltage reference, and provide a comparison signal indicating a result of the comparison, and

iteratively increase or decrease the first voltage by a predetermined step size until the comparison signal has flipped between a high level and a low level, or vice versa, a predetermined number of times,

wherein, in response to the comparison signal not flipping between a high level and a low level, or vice versa, the first voltage is increased by the predetermined step size, and

wherein, in response to the comparison signal flipping between a high level and a low level, or vice versa, the first voltage is decreased by the predetermined step size.

9. The voltage reference generator according to claim 8 , wherein the ripple monitor is adapted to perform a loading compensation following each change of the switching frequency of the monitor switch and the sampling switch.

10. The voltage reference generator according to claim 6 , wherein the variable gain amplifier is adapted to provide an output signal with a unity gain to the monitor capacitor.

11. An integrated circuit including the voltage reference generator according to claim 1 .

12. A System on Chip, SoC, including the voltage reference generator according to claim 1 .

13. A method for controlling a magnitude of a variation of an output voltage of a voltage reference generator, the method comprising:

sampling, by a sampling capacitor connected to an output terminal of the voltage reference generator via a sampling switch, an output of a variable gain amplifier at a first switching frequency,

sampling, by a monitor capacitor connected to the output terminal of the variable gain amplifier via a monitor switch, an output of the variable gain amplifier at a second switching frequency,

estimating the magnitude of a variation of an output voltage of the voltage reference generator by comparing a variation of a voltage of the monitor capacitor to a reference voltage, and

based on the comparison performing one of:

reducing the first switching frequency to increase the magnitude of the variation of the output voltage, and reducing the second switching frequency,

increasing the first switching frequency, to decrease the magnitude of the variation of the output voltage, and increasing the second switching frequency.

14. The method according to claim 13 , wherein said act of comparing a variation of a voltage of the monitor capacitor to a reference comprises comparing a first voltage, based on a voltage of the monitor capacitor, to a second voltage, based on an output of the voltage reference.

15. The method according to claim 14 , further comprising, during a first switching period, form the first voltage by adding a predetermined offset voltage to the voltage of the monitor capacitor, and increasing the first and the second switching frequency in response to a comparison signal, said comparison signal indicating a result of the comparison, changing from a high level to a low level during the first switching period.

16. The method according to claim 15 , further comprising:

during a second switching period subsequent to the first switching period, in response to the comparison signal remaining at the high level at expiry of the first switching period, forming the first voltage by subtracting the predetermined offset voltage from the voltage of the monitor capacitor, and thereafter:

increasing the first and the second switching frequency in response to the comparison signal changing from a low level to a high level during the second switching period, and

decreasing the first and the second switching frequency in response to the comparison signal remaining at a low level during the second switching period.

17. The method according to claim 13 , further comprising, performing loading compensation by:

comparing a first voltage, based on a voltage of the monitor capacitor, to a second voltage based on an output of the voltage reference, and provide a comparison signal indicating a result of the comparison, and

iteratively varying the first voltage by a predetermined step size until the comparison signal has flipped between a high level and a low level, or vice versa, a predetermined number of times:

wherein, in response to the comparison signal not flipping between a high level and a low level, or vice versa, the first voltage is increased by the predetermined step size,

wherein, in response to the comparison signal flipping between a high level and a low level, or vice versa, the first voltage is decreased by the predetermined step size.

18. The method according to claim 17 , further comprising performing a loading compensation following each change of the first and the second switching frequency.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 15, 2018
From: STANZIONE, STEFANO
To: STICHTING IMEC NEDERLAND
Reel/Frame 044944/0289 →
Priority Claims (1)
EP 17155631 · Feb 10, 2017 · regional
Continuity (1)
Related Publication 20180231997A1 · Aug 16, 2018