IP Library Granted Patent US 12665607
Granted Patent B2
US 12665607 · App. 18/496,436 · Granted Jun 23, 2026

ADC architecture incorporating continuous-time quantizer

Inventors: Tanmay Halder (Bangalore, IN); Anand Subramanian (Bangalore, IN); Anand Kannan (Bangalore, IN)
Assignee: TEXAS INSTRUMENTS INCORPORATED
H03M1/08
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Quick Facts
Patent No.
US 12665607
App. No.
18/496,436
Granted
Jun 23, 2026
Kind
B2
Abstract

In some examples, a circuit includes a first integrator having an input and an output. The circuit also includes a switching architecture having first and second terminals, the first terminal of the switching architecture coupled to the output of the first integrator. The circuit also includes a second integrator having an input and an output, the input of the second integrator coupled to the second terminal of the switching architecture. The circuit also includes a quantizer having an input and an output, the input of the quantizer coupled to the output of the second integrator. The circuit also includes a digital processing circuit having an input and an output, the input of the digital processing circuit coupled to the output of the quantizer.

Claims (68)

1 . A circuit, comprising:

a first integrator having an input and an output;

a switching architecture having first and second terminals, the first terminal of the switching architecture coupled to the output of the first integrator;

a second integrator having an input and an output, the input of the second integrator coupled to the second terminal of the switching architecture;

a quantizer having an input and an output, the input of the quantizer coupled to the output of the second integrator, wherein the quantizer includes:

a comparator having first and second inputs, and an output, the first input of the comparator coupled to the input of the quantizer, and the second input of the comparator coupled to a reference voltage terminal;

a latch having an input and an output, the input of the latch coupled to the output of the comparator;

a successive approximation register (SAR) circuit having an input and an output, the input of the SAR circuit coupled to the output of the latch, the output of the SAR circuit coupled to the output of the quantizer; and

a R-2R digital-to-analog converter (DAC) having an input and an output, the input of the R-2R DAC coupled to the output of the SAR circuit, and the output of the R-2R DAC coupled to the first input of the comparator; and

a digital processing circuit having an input and an output, the input of the digital processing circuit coupled to the output of the quantizer.

2 . The circuit of claim 1 , further comprising a third integrator having an input and an output, the input of the third integrator coupled to the output of the first integrator, and the output of the third integrator coupled to the first terminal of the switching architecture.

3 . The circuit of claim 1 , wherein the SAR circuit is a continuous time (CT) SAR circuit.

4 . The circuit of claim 1 , further comprising a digital-to-analog converter (DAC) having an input and an output, the input of the DAC coupled to the output of the digital processing circuit, and the output of the DAC coupled to the input of the first integrator.

5 . A circuit, comprising:

a first integrator having first and second inputs and first and second outputs;

a switching architecture having first and second inputs and first and second outputs, the first input of the switching architecture coupled to the first output of the first integrator, and the second input of the switching architecture coupled to the second output of the first integrator;

a second integrator having first and second inputs and first and second outputs, the first input of the second integrator coupled to the first output of the switching architecture and the second input of the second integrator coupled to the second output of the switching architecture;

a quantizer having first and second inputs and a digital output, the first input of the quantizer coupled to the first output of the second integrator, and the second input of the quantizer coupled to the second output of the second integrator, wherein the quantizer comprises:

a comparator having first, second, and third inputs, and an output, the first input of the comparator coupled to the first input of the quantizer, the second input of the comparator coupled to the second input of the quantizer, and the third input of the comparator coupled to a reference voltage terminal;

a latch having an input and an output, the input of the latch coupled to the output of the comparator;

a successive approximation register (SAR) circuit having an input and an output, the input of the SAR circuit coupled to the output of the latch, the output of the SAR circuit coupled to the digital output of the quantizer; and

a R-2R digital-to-analog converter (DAC) having an input and first and second outputs, the input of the R-2R DAC coupled to the output of the SAR circuit, the first output of the R-2R DAC coupled to the first input of the comparator, and the second output of the R-2R DAC coupled to the second input of the comparator; and

a digital processing circuit having an input and an output, the input of the digital processing circuit coupled to the digital output of the quantizer.

6 . The circuit of claim 5 , wherein the SAR circuit is a continuous time (CT) SAR circuit.

7 . The circuit of claim 5 , further comprising a third integrator having first and second inputs and first and second outputs, the first input of the third integrator coupled to the first output of the first integrator, and the second input of the third integrator coupled to the second output of the first integrator, wherein the switching architecture has third and fourth inputs, the third input of the switching architecture coupled to the first output of the third integrator, and the fourth input of the switching architecture coupled to the second output of the third integrator.

8 . The circuit of claim 7 , further comprising:

a first resistor having first and second terminals, the first terminal of the first resistor coupled to the first output of the third integrator;

a second resistor having first and second terminals, the first terminal of the second resistor coupled to the first output of the third integrator;

a third resistor having first and second terminals, the first terminal of the third resistor coupled to the second output of the third integrator;

a fourth resistor having first and second terminals, the first terminal of the third resistor coupled to the second output of the third integrator;

a first switch having first and second terminals, the first terminal of the first switch coupled to the second terminal of the first resistor, and the second terminal of the first switch coupled to the first input of the second integrator;

a second switch having first and second terminals, the first terminal of the second switch coupled to the second terminal of the second resistor, and the second terminal of the second switch coupled to the first input of the second integrator;

a third switch having first and second terminals, the first terminal of the third switch coupled to the second terminal of the second resistor, and the second terminal of the third switch coupled to the second input of the second integrator;

a fourth switch having first and second terminals, the first terminal of the fourth switch coupled to the second terminal of the third resistor, and the second terminal of the fourth switch coupled to the first input of the second integrator;

a fifth switch having first and second terminals, the first terminal of the fifth switch coupled to the second terminal of the third resistor, and the second terminal of the fifth switch coupled to the second input of the second integrator; and

a sixth switch having first and second terminals, the first terminal of the sixth switch coupled to the second terminal of the fourth resistor, and the second terminal of the sixth switch coupled to the second input of the second integrator.

9 . The circuit of claim 5 , further comprising:

a first resistor having first and second terminals, the first terminal of the first resistor coupled to the first output of the first integrator;

a second resistor having first and second terminals, the first terminal of the second resistor coupled to the first output of the first integrator;

a third resistor having first and second terminals, the first terminal of the third resistor coupled to the second output of the first integrator;

a fourth resistor having first and second terminals, the first terminal of the third resistor coupled to the second output of the first integrator;

a first switch having first and second terminals, the first terminal of the first switch coupled to the second terminal of the first resistor, and the second terminal of the first switch coupled to the first input of the second integrator;

a second switch having first and second terminals, the first terminal of the second switch coupled to the second terminal of the second resistor, and the second terminal of the second switch coupled to the first input of the second integrator;

a third switch having first and second terminals, the first terminal of the third switch coupled to the second terminal of the second resistor, and the second terminal of the third switch coupled to the second input of the second integrator;

a fourth switch having first and second terminals, the first terminal of the fourth switch coupled to the second terminal of the third resistor, and the second terminal of the fourth switch coupled to the first input of the second integrator;

a fifth switch having first and second terminals, the first terminal of the fifth switch coupled to the second terminal of the third resistor, and the second terminal of the fifth switch coupled to the second input of the second integrator; and

a sixth switch having first and second terminals, the first terminal of the sixth switch coupled to the second terminal of the fourth resistor, and the second terminal of the sixth switch coupled to the second input of the second integrator.

10 . The circuit of claim 9 , wherein the quantizer is configured to:

receive a second integrator output signal via the first and second inputs of the quantizer;

determine, via the SAR circuit, a digital value representative of the second integrator output signal; and

provide the digital value representative of the second integrator output signal to the digital processing circuit.

11 . The circuit of claim 10 , wherein the switching architecture is configured to perform compensation of a noise transfer function of the second integrator output signal based on the first through fourth resistors, the compensation to compensate for a second integrator input signal having a value held at zero for a period of time.

12 . The circuit of claim 5 ,

wherein the first integrator comprises:

a first differential amplifier having first and second inputs and first and second outputs, in which the first input of the first differential amplifier is the first input of the first integrator, the second input of the first differential amplifier is the second input of the first integrator, the first output of the first differential amplifier is coupled to the first input of the switching architecture, and the second output of the first differential amplifier is coupled to the second input of the switching architecture, and

wherein the second integrator comprises-:

a second differential amplifier having first and second inputs and first and second outputs, in which the first input of the second differential amplifier is coupled to the first output of the switching architecture, the second input of the second differential amplifier is coupled to the second output of the switching architecture, the first output of the second differential amplifier is coupled to the first input of the quantizer, and the second output of the second differential amplifier is coupled to the second input of the quantizer.

13 . The circuit of claim 5 , further comprising a digital-to-analog converter (DAC) having an input and an output, the input of the DAC coupled to the output of the digital processing circuit, and the output of the DAC coupled to the first integrator.

14 . A method, comprising:

receiving an analog signal;

filtering the received signal to form a filtered signal;

quantizing the filtered signal to determine a digital code representative of the filtered signal, the quantizing performed via a resistor-based successive approximation register (SAR) circuit without providing a reference value via a capacitor array; and

processing the digital code to determine a digital value representative of a value of the analog signal.

15 . The method of claim 14 , wherein the resistor-based SAR circuit is a resistor-based continuous time (CT) SAR circuit.

16 . The method of claim 14 , further comprising combining the analog signal with a feedback signal to form the received signal.

17 . The method of claim 14 , wherein the filtering integrates the received signal to form the filtered signal.

18 . The method of claim 14 , further comprising providing the received signal to a filter for a first period of time and providing no net current flow to the filter for a second period of time to form the filtered signal.

19 . The method of claim 14 , wherein the quantizing is performed by a quantizer including a R-2R digital-to-analog converter (DAC).