A Design Methodology for Wideband Current-Reuse Receiver Front-Ends Aimed at Low-Power Applications
Abstract
:1. Introduction
2. RF-to-BB Current-Reuse Receiver Front-End Circuit Level Design
2.1. Low Noise Transconductance Amplifier
2.2. Down-Conversion Mixer
2.3. Active Inductor and Noise Cancellation
2.4. Transimpedance Amplifier
3. System Integration
CRR Front-End
4. Layout Considerations
4.1. LNTA Layout
4.2. Mixer Layout
4.3. Baseband Circuits
4.4. Floor Plan
5. Post-Layout Simulation Results and Discussion
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
P1dB | 1 dB compression point |
AI | Active inductor |
BB | Baseband |
CG | Common gate |
CRR | Current-reuse receiver |
CS | Common source |
DUT | Design under test |
DSB | Double side-band |
ÉTS | École de technologie supérieure |
FoM | Figure of merit |
IF | Intermediate frequency |
IoT | Internet of Things |
LNTA | Low-noise transconductance amplifier |
LO | Local oscillator |
NF | Noise figure |
DSBNF | Double side-band noise figure |
PDK | Process design kit |
RF | Radio frequency |
TIA | Transimpedance amplifier |
VCO | Voltage-controlled oscillator |
VCCS | Voltage-controlled current source |
VTH | Voltage threshold |
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Parameters | This Work ** | JSSC 2010 [2] | JSSC 2014 [4] | JSSC 2014 [5] | MWCL 2019 [8] | JSSC 2017 [11] | IEEE 2021 [10] |
---|---|---|---|---|---|---|---|
Application | IoT | ZigBee | ZigBee | ZigBee | IoT | Bluetooth | BLE |
Process node | 130 nm CMOS | 90 nm CMOS | 65 nm CMOS | 65 nm CMOS | 65 nm CMOS | 28 nm CMOS | 65 nm CMOS |
Freq. (GHz) | 0.8–3.4 | 2.4 | 2.4 | 0.433–0.96 | 0.91 | 2.4 | 2.4–2.48 |
S11 (dB) | <−10 | <−10 | <−10 | <−10 | <−10 | <−10 | <−10 |
Gain (dB) | 39.5 | 75 | 57 | 50 | 40.7 | 43.4 | 42 |
NF (dB) | 5.6 | 9 | 8.5 | 8.1 | 1.94 | 7.8 | 13.2 |
IIP3 (dBm) | −28 * | −12.5 | −6 | −20.5 | −25.6 * | −20 * | −25 * |
PDC@VDD | [email protected] | [email protected] | [email protected] | [email protected] | [email protected] | [email protected] | [email protected] |
Active Area | 0.025 | 0.35 | 0.3 | 0.2 | 0.559 | 0.4 | 0.85 |
FoM | −11 | −38.3 | −34.7 | −27.1 | −24.8 | −15.6 | −32.3 |
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Abbasi, A.; Nabki, F. A Design Methodology for Wideband Current-Reuse Receiver Front-Ends Aimed at Low-Power Applications. Electronics 2022, 11, 1493. https://doi.org/10.3390/electronics11091493
Abbasi A, Nabki F. A Design Methodology for Wideband Current-Reuse Receiver Front-Ends Aimed at Low-Power Applications. Electronics. 2022; 11(9):1493. https://doi.org/10.3390/electronics11091493
Chicago/Turabian StyleAbbasi, Arash, and Frederic Nabki. 2022. "A Design Methodology for Wideband Current-Reuse Receiver Front-Ends Aimed at Low-Power Applications" Electronics 11, no. 9: 1493. https://doi.org/10.3390/electronics11091493
APA StyleAbbasi, A., & Nabki, F. (2022). A Design Methodology for Wideband Current-Reuse Receiver Front-Ends Aimed at Low-Power Applications. Electronics, 11(9), 1493. https://doi.org/10.3390/electronics11091493