Claims
- 1. A circuit, comprising:
a differential amplifier circuit; a differential capacitive element coupled across the amplifier circuit in an integrating feedback configuration; and an offset cancellation mechanism including input cross-coupled switches coupled between the differential capacitive element and the amplifier circuit inputs and output cross-coupled switches coupled between the differential capacitive element and the amplifier circuit outputs for swapping the amplifier circuit inputs and outputs to cancel chopper offset.
- 2. The circuit according to claim 1, further including an input switch network coupled between differential input signal terminals and the amplifier positive and negative inputs external to the integrating feedback configuration for swapping the differential input signal terminal connections to the amplifier positive and negative inputs.
- 3. The circuit according to claim 3, further including an output switch network coupled between differential output signal terminals and the amplifier positive and negative outputs external to the integrating feedback configuration.
- 4. The circuit according to claim 1, wherein the circuit corresponds to one stage in a sigma-delta type Analog-to-Digital Converter (ADC).
- 5. The circuit according to claim 1, wherein the differential capacitive element includes a filter capacitor.
- 6. The circuit according to claim 1, wherein the amplifier circuit includes a differential operational amplifier.
- 7. A circuit comprising:
a differential amplifier circuit having positive and negative inputs and positive and negative outputs; a capacitive element across the differential inputs and outputs in an integrating configuration, the capacitive element including positive and negative differential components, each having a first end and a second end; and a chopper mechanism for providing offset cancellation for the circuit, the chopper mechanism including
a first pair of cross-coupled switches including a first switch coupled between the first end of the capacitive element positive component and the negative input of the amplifier circuit and a second switch coupled between the first end of the capacitive element positive component and the positive input of the amplifier circuit; a second pair of cross-coupled switches including a third switch coupled between the second end of the capacitive element positive component and the positive output of the amplifier circuit and a fourth switch coupled between the second end of the capacitive element positive component and the negative output of the amplifier circuit, a third pair of cross-coupled switches including a fifth switch coupled between the first end of the capacitive element negative component and the negative input of the amplifier circuit and a sixth switch coupled between the first end of the capacitive element negative component and the positive input of the amplifier circuit; and a fourth pair of cross-coupled switches including a seventh switch coupled between the second end of the capacitive element negative component and the positive output of the amplifier circuit and an eighth switch coupled between the second end of the capacitive element negative component and the negative output of the amplifier circuit such that the cross-coupled switches enable swapping of the inputs and outputs of the amplifier circuit for canceling chopper offset.
- 8. The circuit according to claim 7, further including an input switch network coupled between the amplifier inputs and differential signal input terminals for swapping a connection of the differential signal input terminals between the positive and negative input terminals of the amplifier circuit.
- 9. The circuit according to claim 7, further including an output switch network coupled to the amplifier output for swapping the positive and negative outputs of the amplifier circuit.
- 10. The circuit according to claim 7, wherein the capacitive element includes a filter capacitor.
- 11. The circuit according to claim 7, wherein the amplifier circuit includes a differential operational amplifier.
- 12. The circuit according to claim 7, wherein the circuit corresponds to one stage of a delta-signal Analog-to-Digital Converter (ADC).
- 13. An Analog-to-Digital Converter (ADC) circuit, comprising:
a differential amplifier circuit; a differential capacitive element coupled across the amplifier circuit in an integrating feedback configuration; and an offset cancellation mechanism including input cross-coupled switches coupled between the differential capacitive element and the amplifier circuit inputs and output cross-coupled switches coupled between the differential capacitive element and the amplifier circuit outputs for swapping the amplifier circuit inputs and outputs to cancel chopper offset.
- 14. The ADC circuit according to claim 13, wherein the ADC circuit is provided as a delta-sigma type ADC.
- 15. The ADC circuit according to claim 13, further including a quantizer coupled to the amplifier circuit.
- 16. A method for canceling chopper offset, comprising:
receiving a differential input signal; storing a signal level of the input signal; presenting a charge packet corresponding to the stored signal level to a differential amplifying circuit including an integrator feedback circuit; and chopping the charge packet between positive and negative inputs of the differential amplifying circuit such that chopper offset is canceled.
- 17. The method according to claim 16, further including alternating differential input signal connections between the differential amplifier inputs external to the integrator feedback circuit.
- 18. The method according to claim 17, further including alternating differential output signals between the differential amplifier outputs external to the integrator feedback circuit.
- 19. The method according to claim 16, further including converting an analog signal to a digital signal.
- 20. The method according to claim 19, further including converting the analog signal in an delta-sigma type conversion.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims the benefit of U.S. Provisional Patent Application No. 60/354,317, filed on Feb. 4, 2002, which is incorporated herein by reference.
STATEMENTS REGARDING FEDERALLY SPONSORED RESEARCH
[0002] The Government may have certain rights in the invention pursuant to DARPA Contract No. DAAL-01-95-K-3526.
Provisional Applications (1)
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Number |
Date |
Country |
|
60354317 |
Feb 2002 |
US |