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2016 | OriginalPaper | Buchkapitel

5. A Sub-GHz Multi-ISM-Band ZigBee Receiver Using Function-Reuse and Gain-Boosted N-Path Techniques for IoT Applications

verfasst von : Zhicheng Lin, Pui-In Mak (Elvis), Rui Paulo Martins

Erschienen in: Ultra-Low-Power and Ultra-Low-Cost Short-Range Wireless Receivers in Nanoscale CMOS

Verlag: Springer International Publishing

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Abstract

Internet of Things (IoT) represents a competitive and large market for short-range ultra-low-power (ULP) wireless connectivity [1, 2]. According to [3], by 2020 the IoT market will be close to hundreds of billion dollars (annually ~16 billions). To bring down the hardware cost of such massive inter-connections, sub-GHz ULP wireless products compliant with the existing wireless standard such as the IEEE 802.15.4c/d (ZigBee) will be of great demand, especially for those that can cover all regional ISM bands [e.g., China (433 MHz), Europe (860 MHz), North America (915 MHz) and Japan (960 MHz)]. Together with the obvious goals of small chip area, minimum external components and ultra-low-voltage (ULV) supply (for possible energy harvesting), the design of such a receiver poses significant challenges.

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Literatur
1.
Zurück zum Zitat J.A. Stankovic, Research directions for the internet of things. IEEE Int. Things J. 1(1), 3–9 (2014)CrossRef J.A. Stankovic, Research directions for the internet of things. IEEE Int. Things J. 1(1), 3–9 (2014)CrossRef
2.
Zurück zum Zitat A. Zanella, N. Bui, A. Castellani, L. Vangelista, M. Zorzi, Internet of things for smart cities. IEEE Int. Things J. 1(1), 22–32 (2014)CrossRef A. Zanella, N. Bui, A. Castellani, L. Vangelista, M. Zorzi, Internet of things for smart cities. IEEE Int. Things J. 1(1), 22–32 (2014)CrossRef
4.
Zurück zum Zitat J. Sinderen, G. Jong, F. Leong, et al., Wideband UHF ISM-Band transceiver supporting multichannel reception and DSSS modulation. ISSCC Dig. Tech. Papers, pp. 454–455, Feb. 2013 J. Sinderen, G. Jong, F. Leong, et al., Wideband UHF ISM-Band transceiver supporting multichannel reception and DSSS modulation. ISSCC Dig. Tech. Papers, pp. 454–455, Feb. 2013
5.
Zurück zum Zitat A. Wong, M. Dawkins, G. Devita, et al., A 1 V 5 mA multimode IEEE 802.15.6/bluetooth low-energy WBAN transceiver for biotelemetry applications. ISSCC Dig. Tech. Papers, pp. 300–301, Feb. 2012 A. Wong, M. Dawkins, G. Devita, et al., A 1 V 5 mA multimode IEEE 802.15.6/bluetooth low-energy WBAN transceiver for biotelemetry applications. ISSCC Dig. Tech. Papers, pp. 300–301, Feb. 2012
6.
Zurück zum Zitat B.W. Cook, A. Berny, A. Molnar, S. Lanzisera, K. Pister, Low-power, 2.4-GHz transceiver with passive RX front-end and 400-mV supply. IEEE J. Solid-State Circ. 41, 2767–2775 (2006)CrossRef B.W. Cook, A. Berny, A. Molnar, S. Lanzisera, K. Pister, Low-power, 2.4-GHz transceiver with passive RX front-end and 400-mV supply. IEEE J. Solid-State Circ. 41, 2767–2775 (2006)CrossRef
7.
Zurück zum Zitat Z. Lin, P.-I. Mak, R.P. Martins, A 0.14-mm2 1.4-mW 59.4-dB-SFDR 2.4 GHz ZigBee/WPAN receiver exploiting a ‘Split-LNTA + 50 % LO’ topology in 65-nm CMOS. IEEE Trans. Microw. Theory Techn. 62(7), 1525–1534 (2014)CrossRef Z. Lin, P.-I. Mak, R.P. Martins, A 0.14-mm2 1.4-mW 59.4-dB-SFDR 2.4 GHz ZigBee/WPAN receiver exploiting a ‘Split-LNTA + 50 % LO’ topology in 65-nm CMOS. IEEE Trans. Microw. Theory Techn. 62(7), 1525–1534 (2014)CrossRef
8.
Zurück zum Zitat A. Mirzaei, H. Darabi, Analysis of imperfections on performance of 4-phase passive-mixer-based high-Q bandpass filters in SAW-less receivers. IEEE Trans. Circ. Syst. I, Reg. Pap. 58(5), 879–892 (2011)MathSciNetCrossRef A. Mirzaei, H. Darabi, Analysis of imperfections on performance of 4-phase passive-mixer-based high-Q bandpass filters in SAW-less receivers. IEEE Trans. Circ. Syst. I, Reg. Pap. 58(5), 879–892 (2011)MathSciNetCrossRef
9.
Zurück zum Zitat A. Ghaffari, E. Klumperink, M. Soer, B. Nauta, Tunable High-Q N-path band-pass filters: modeling and verification. IEEE J. Solid-State Circ. 46(5), 998–1010 (2011) A. Ghaffari, E. Klumperink, M. Soer, B. Nauta, Tunable High-Q N-path band-pass filters: modeling and verification. IEEE J. Solid-State Circ. 46(5), 998–1010 (2011)
10.
Zurück zum Zitat J. Han, R. Gharpurey, Recursive receiver down-converters with multiband feedback and gain-reuse. IEEE J. Solid-State Circ. 43, 1119–1131 (2008)CrossRef J. Han, R. Gharpurey, Recursive receiver down-converters with multiband feedback and gain-reuse. IEEE J. Solid-State Circ. 43, 1119–1131 (2008)CrossRef
11.
Zurück zum Zitat Z. Lin, P.-I. Mak, R.P. Martins, Analysis and modeling of a gain-boosted N-path switched-capacitor bandpass filter. IEEE Trans. Circ. Syst. I, Reg. Pap. 9, 2560–2568 (2014)CrossRef Z. Lin, P.-I. Mak, R.P. Martins, Analysis and modeling of a gain-boosted N-path switched-capacitor bandpass filter. IEEE Trans. Circ. Syst. I, Reg. Pap. 9, 2560–2568 (2014)CrossRef
12.
Zurück zum Zitat Z. Lin, P.-I. Mak, R. P. Martins, A 0.5 V 1.15 mW 0.2 mm2 Sub-GHz ZigBee receiver supporting 433/860/915/960 MHz ISM bands with zero external components. ISSCC Dig. Tech. Papers, pp. 164–165, Feb. 2014 Z. Lin, P.-I. Mak, R. P. Martins, A 0.5 V 1.15 mW 0.2 mm2 Sub-GHz ZigBee receiver supporting 433/860/915/960 MHz ISM bands with zero external components. ISSCC Dig. Tech. Papers, pp. 164–165, Feb. 2014
13.
Zurück zum Zitat F. Zhang, Y. Miyahara, B. Otis, Design of a 300-mV 2.4-GHz receiver using transformer-coupled techniques. IEEE J. Solid-State Circ. 48, 3190–3205 (2013)CrossRef F. Zhang, Y. Miyahara, B. Otis, Design of a 300-mV 2.4-GHz receiver using transformer-coupled techniques. IEEE J. Solid-State Circ. 48, 3190–3205 (2013)CrossRef
14.
Zurück zum Zitat F. Zhang, K. Wang, J. Koo, Y. Miyahara, B. Otis, A 1.6 mW 300 mV supply 2.4-GHz receiver with –94 dBm sensitivity for energy-harvesting applications. ISSCC Dig. Tech. Papers, pp. 456–457, Feb. 2013 F. Zhang, K. Wang, J. Koo, Y. Miyahara, B. Otis, A 1.6 mW 300 mV supply 2.4-GHz receiver with –94 dBm sensitivity for energy-harvesting applications. ISSCC Dig. Tech. Papers, pp. 456–457, Feb. 2013
15.
Zurück zum Zitat Z. Lin, P.-I. Mak, R.P. Martins, A 1.7 mW 0.22 mm2 2.4 GHz ZigBee RX exploiting a current-reuse blixer + Hybrid filter topology in 65 nm CMOS. ISSCC Dig. Tech. Papers, pp. 448–449, Feb. 2013 Z. Lin, P.-I. Mak, R.P. Martins, A 1.7 mW 0.22 mm2 2.4 GHz ZigBee RX exploiting a current-reuse blixer + Hybrid filter topology in 65 nm CMOS. ISSCC Dig. Tech. Papers, pp. 448–449, Feb. 2013
16.
Zurück zum Zitat Z. Lin, P.-I. Mak, R.P. Martins, A 2.4-GHz ZigBee receiver exploiting an RF-to-BB-current-reuse blixer + hybrid filter topology in 65-nm CMOS. IEEE J. Solid-State Circ. 49, 1333–1344 (2014)CrossRef Z. Lin, P.-I. Mak, R.P. Martins, A 2.4-GHz ZigBee receiver exploiting an RF-to-BB-current-reuse blixer + hybrid filter topology in 65-nm CMOS. IEEE J. Solid-State Circ. 49, 1333–1344 (2014)CrossRef
17.
Zurück zum Zitat C. Andrews, A. Molnar, Implications of passive mixer transparency for impedance matching and noise figure in passive mixer-first receivers. IEEE Trans. Circ. Syst. I, Reg. Pap. 57, 3092–3103 (2010)MathSciNetCrossRef C. Andrews, A. Molnar, Implications of passive mixer transparency for impedance matching and noise figure in passive mixer-first receivers. IEEE Trans. Circ. Syst. I, Reg. Pap. 57, 3092–3103 (2010)MathSciNetCrossRef
18.
Zurück zum Zitat C. Andrews, A. Molnar, A passive mixer-first receiver with digitally controlled and widely tunable RF interface. IEEE J. Solid-State Circ. 45, 2696–2708 (2010)CrossRef C. Andrews, A. Molnar, A passive mixer-first receiver with digitally controlled and widely tunable RF interface. IEEE J. Solid-State Circ. 45, 2696–2708 (2010)CrossRef
19.
Zurück zum Zitat M. Soer, E. Klumperink, P. de Boer, F. van Vliet, B. Nauta, Unified frequency domain analysis of switched-series-RC passive mixers and samplers. IEEE Trans. Circ. Syst. I, Reg. Pap. 57(10), 2618–2631 (2010)CrossRefMATH M. Soer, E. Klumperink, P. de Boer, F. van Vliet, B. Nauta, Unified frequency domain analysis of switched-series-RC passive mixers and samplers. IEEE Trans. Circ. Syst. I, Reg. Pap. 57(10), 2618–2631 (2010)CrossRefMATH
20.
Zurück zum Zitat M. Tedeschi, A. Liscidini, R. Castello, Low-power quadrature receivers for ZigBee (IEEE 802.15.4) applications. IEEE J. Solid-State Circ. 45, 1710–1719 (2010)CrossRef M. Tedeschi, A. Liscidini, R. Castello, Low-power quadrature receivers for ZigBee (IEEE 802.15.4) applications. IEEE J. Solid-State Circ. 45, 1710–1719 (2010)CrossRef
Metadaten
Titel
A Sub-GHz Multi-ISM-Band ZigBee Receiver Using Function-Reuse and Gain-Boosted N-Path Techniques for IoT Applications
verfasst von
Zhicheng Lin
Pui-In Mak (Elvis)
Rui Paulo Martins
Copyright-Jahr
2016
DOI
https://doi.org/10.1007/978-3-319-21524-2_5

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