IP Library Granted Patent US 10,673,447
Granted Patent B2
US 10,673,447 · App. 16/269,303 · Granted Jun 2, 2020

Device and method for analog-to-digital conversion with charge redistribution, converter and associated image acquisition chain

Inventor: Laurent Vaccariello (Fontanil-Cornillon, FR)
Assignee: STMICROELECTRONICS (ALPS) SAS
H03M1/002H03M1/0629H03M1/468H03M1/00H03M1/12H03M1/365H03M1/804
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Quick Facts
Patent No.
US 10,673,447
App. No.
16/269,303
Granted
Jun 2, 2020
Kind
B2
Abstract

An N-bit type charge redistribution analog-to-digital conversion device includes an input terminal configured to receive an input signal and coupled via a line to an output terminal. The output terminal is configured to be coupled to a comparator. The device further includes three reference potential sources of different values and a network of capacitors, where a first terminal of each capacitor is coupled to the line, and where a second terminal of each capacitor is coupled to switching circuit configured for coupling the second terminal of each capacitor to one of the reference potentials.

Claims (70)

1. An N-bit type charge redistribution analog-to-digital conversion device, comprising:

an input terminal configured to receive an input signal;

an output terminal coupled to the input terminal via a line, wherein the output terminal is configured to be coupled to a comparator;

a plurality of reference potential terminals configured to be respectively coupled to a plurality of reference potential sources of different values;

a plurality of switching circuits; and

a network of capacitors comprising a plurality of capacitors, wherein a first terminal of each capacitor of the network of capacitors is coupled to the line, wherein a second terminal of a respective capacitor of the network of capacitors is coupled to a respective switching circuit of the plurality of switching circuits, the respective switching circuit is configured to couple the second terminal of the respective capacitor to one of the plurality of reference potential sources or to leave the second terminal of the respective capacitor floating, wherein the network of capacitors comprises a reference capacitor having a capacitance equal to a reference capacitance value and N groups of capacitors, wherein an overall capacitance n of each group of the N groups of capacitors follows a geometric progression series of ratio

2

N

2

n

,

wherein N is a positive integer greater or equal to 1, and wherein n is a positive integer greater or equal to 1 and smaller or equal to N.

2. The device according to claim 1 , wherein an initial value of the geometric progression series is equal to the reference capacitance value.

3. The device according to claim 1 , wherein capacitors of each group of the N groups of capacitors have a capacitance being a multiple of the reference capacitance value, and wherein an overall capacitance of the network of capacitors is equal to 2N times the reference capacitance value.

4. The device according to claim 1 , wherein N is equal to 4, wherein a first group of capacitors of the N groups of capacitors comprises four capacitors having a capacitance equal to twice the reference capacitance value, wherein a second group of capacitors of the N groups of capacitors comprises two capacitors having a capacitance equal to twice the reference capacitance value, wherein a third group of capacitors of the N groups of capacitors comprises one capacitor having a capacitance equal to twice the reference capacitance value, and wherein a fourth group of capacitors of the N groups of capacitors comprises one capacitor having a capacitance equal to the reference capacitance value.

5. The device according to claim 1 , wherein the plurality of reference potential sources comprises a first reference potential source and a second reference potential source having a same magnitude and an opposite sign.

6. The device according to claim 5 , wherein the plurality of reference potential sources further comprises a third reference potential source coupled to a ground potential.

7. An analog-to-digital converter, comprising:

a conversion device, comprising:

an input terminal configured to receive an input signal;

an output terminal coupled to the input terminal via a line;

a plurality of reference potential terminals configured to be respectively coupled to a plurality of reference potential sources of different values;

a plurality of switching circuits; and

a network of capacitors comprising a plurality of capacitors, wherein a first terminal of each capacitor of the network of capacitors is coupled to the line, wherein a second terminal of a respective capacitor of the network of capacitors is coupled to a respective switching circuit of the plurality of switching circuits, the respective switching circuit is configured to couple the second terminal of the respective capacitor to one of the plurality of reference potential sources or to couple the second terminal of the respective capacitor to a floating terminal;

a comparator coupled to the output terminal of the conversion device; and

a state machine configured to successively connect the second terminal of the plurality of capacitors to the floating terminal.

8. The analog-to-digital converter according to claim 7 , wherein the output terminal of the conversion device is coupled to a non-inverting input of the comparator, and wherein an inverting input of the comparator is coupled to a variable potential different from the plurality of reference potential sources, and wherein an output of the comparator is coupled to an input of the state machine.

9. The analog-to-digital converter according to claim 7 , wherein the state machine comprises a plurality of outputs for delivering a digital word, and wherein respective inputs of the plurality of switching circuits are coupled to respective outputs of the plurality of outputs of the state machine.

10. The analog-to-digital converter according to claim 7 , wherein the output terminal is directly connected to the input terminal via the line.

11. The analog-to-digital converter according to claim 7 , wherein the network of capacitors comprises a reference capacitor having a capacitance equal to a reference capacitance value and N groups of capacitors, wherein an overall capacitance n of each group of the N groups of capacitors follows a geometric progression series of ratio

2

N

2

n

,

wherein N is a positive integer greater or equal to 1, and wherein n is a positive integer greater or equal to 1 and smaller or equal to N.

12. An image acquisition chain, comprising:

a pixel; and

a conversion device comprising an input terminal coupled to an output of the pixel, the conversion device comprising:

an output terminal coupled to the input terminal via a line;

a plurality of reference potential terminals configured to be respectively coupled to a plurality of reference potential sources of different values;

a plurality of switching circuits; and

a network of capacitors comprising a plurality of capacitors, wherein a first terminal of each capacitor of the network of capacitors is coupled to the line, wherein a second terminal of a respective capacitor of the network of capacitors is coupled to a respective switching circuit of the plurality of switching circuits, the respective switching circuit is configured to couple the second terminal of the respective capacitor to one of the plurality of reference potential sources or to couple the second terminal of the respective capacitor to a floating terminal, wherein the network of capacitors comprises a reference capacitor having a capacitance equal to a reference capacitance value and N groups of capacitors, wherein an overall capacitance n of each group of the N groups of capacitors follows a geometric progression series of ratio

2

N

2

n

,

wherein N is a positive integer greater or equal to 1, and wherein n is a positive integer greater or equal to 1 and smaller or equal to N.

13. The image acquisition chain according to claim 12 , wherein an initial value of the geometric progression series is equal to the reference capacitance value.

14. The image acquisition chain according to claim 12 , wherein capacitors of each group of the N groups of capacitors have a capacitance being a multiple of the reference capacitance value, and wherein an overall capacitance of the network of capacitors is equal to 2N times the reference capacitance value.

15. The image acquisition chain according to claim 12 , wherein N is equal to 4, wherein a first group of capacitors of the N groups of capacitors comprises four capacitors having a capacitance equal to twice the reference capacitance value, wherein a second group of capacitors of the N groups of capacitors comprises two capacitors having a capacitance equal to twice the reference capacitance value, wherein a third group of capacitors of the N groups of capacitors comprises one capacitor having a capacitance equal to twice the reference capacitance value, and wherein a fourth group of capacitors of the N groups of capacitors comprises one capacitor having a capacitance equal to the reference capacitance value.

16. An image acquisition chain, comprising:

a pixel; and

a conversion device comprising an input terminal coupled to an output of the pixel, the conversion device comprising:

an output terminal coupled to the input terminal via a line;

a plurality of reference potential terminals configured to be respectively coupled to a plurality of reference potential sources of different values;

a plurality of switching circuits;

a network of capacitors comprising a plurality of capacitors, wherein a first terminal of each capacitor of the network of capacitors is coupled to the line, wherein a second terminal of a respective capacitor of the network of capacitors is coupled to a respective switching circuit of the plurality of switching circuits, the respective switching circuit is configured to couple the second terminal of the respective capacitor to one of the plurality of reference potential sources or to couple the second terminal of the respective capacitor to a floating terminal; and

a state machine configured to successively connect the second terminal of the plurality of capacitors to the floating terminal.

17. A method, comprising:

receiving an input signal at an input terminal of an N-bit type charge redistribution analog-to-digital conversion device;

asserting an output signal at an output terminal of the N-bit type charge redistribution analog-to-digital conversion device, wherein the output terminal is coupled to the input terminal via a line and to a comparator;

providing a plurality of reference potentials of different values to a plurality of reference potential terminals of the N-bit type charge redistribution analog-to-digital conversion device;

switching a network of capacitors, comprising a plurality of capacitors, using a plurality of switching circuits, wherein a first terminal of each capacitor of the network of capacitors is coupled to the line, wherein a second terminal of a respective capacitor of the network of capacitors is coupled to a same reference potential of the plurality of reference potentials, wherein switching the network of capacitors comprises:

disconnecting the second terminal of the respective capacitor from a ground potential to leave the second terminal of the respective capacitor floating when the network of capacitors is charged by the input signal; and

repeating disconnection of the second terminal of successive capacitors of the network of capacitors after a predetermined duration until the second terminal of each capacitor of the network of capacitors is floating.

18. The method according to claim 17 , wherein the second terminal of each capacitor of the network of capacitors is disconnected from the ground potential after the predetermined duration so that an overall switched capacitance is constant.

19. The method according to claim 17 , wherein the plurality of reference potentials comprises a first reference potential source and a second reference potential source having a same magnitude and an opposite sign.

20. The method according to claim 19 , wherein the same reference potential of the plurality of reference potentials is coupled to the ground potential.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 10, 2023
From: STMICROELECTRONICS (ALPS) SAS
To: STMICROELECTRONICS INTERNATIONAL N.V.
Reel/Frame 063281/0871 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 6, 2019
From: VACCARIELLO, LAURENT
To: STMICROELECTRONICS (ALPS) SAS
Reel/Frame 048255/0822 →
Priority Claims (1)
FR 18 51446 · Feb 20, 2018 · national
Continuity (1)
Related Publication 20190260382A1 · Aug 22, 2019