Santana et al., 2024 - Google Patents
A 70MHz bandwidth time-interleaved noise-shaping SAR assisted delta sigma ADC with digital cross-coupling in 28nm CMOSSantana et al., 2024
View PDF- Document ID
- 10032519418926398096
- Author
- Santana L
- Martens E
- Lagos J
- Wambacq P
- Craninckx J
- Publication year
- Publication venue
- IEEE Open Journal of the Solid-State Circuits Society
External Links
Snippet
This work presents a time-interleaved (TI) delta-sigma modulator (DSM) analog-to-digital converter (ADC) leveraging a 6-b noise-coupled (NC) noise-shaping (NS) SAR quantizer. A novel technique to implement the noise coupling mid-quantization is presented to relax the …
- 238000007493 shaping process 0 title abstract description 23
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- H—ELECTRICITY
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- H03M3/39—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators
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- H03M3/454—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators characterised by the order of the loop filter, e.g. error feedback type the modulator having a higher order loop filter in the feedforward path with distributed feedback, i.e. with feedback paths from the quantiser output to more than one filter stage
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- H03M3/422—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators characterised by the number of quantisers and their type and resolution having one quantiser only
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- H03M3/44—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators characterised by the order of the loop filter, e.g. error feedback type the modulator having a higher order loop filter in the feedforward path with provisions for rendering the modulator inherently stable
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- H03M3/448—Structural details of delta-sigma modulators, e.g. incremental delta-sigma modulators characterised by the order of the loop filter, e.g. error feedback type the modulator having a higher order loop filter in the feedforward path with provisions for rendering the modulator inherently stable by a particular choice of poles or zeroes in the z-plane, e.g. by positioning zeroes outside the unit circle, i.e. causing the modulator to operate in a chaotic regime by removing part of the zeroes, e.g. using local feedback loops
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