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2018 | OriginalPaper | Buchkapitel

4. Circuit Design of CMOS Rectifiers

verfasst von : Yan Lu, Wing-Hung Ki

Erschienen in: CMOS Integrated Circuit Design for Wireless Power Transfer

Verlag: Springer Singapore

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Abstract

This chapter discusses the design considerations and the state-of-the-art designs of CMOS rectifiers for wireless power receivers. First, the forward current conduction capability and the reverse leakage current of on-chip passive diodes are investigated and compared. Next, comparator-based active rectifiers for near-field WPT solutions are discussed and demonstrated with a couple of design examples. Moreover, a near-optimal adaptive on- and off-delay compensation technique is introduced. Other rectifier topologies, such as the delay-locked-loop (DLL) based rectifier and the threshold-voltage compensated rectifier, are also discussed. In addition, rectifiers for RF energy harvesting for far-field WPT are discussed as well.

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Literatur
2.
3.
Zurück zum Zitat Lu Y, Li X, Ki W-H, Tsui C-Y, Yue CP (2013) A 13.56MHz fully integrated 1X/2X active rectifier with compensated bias current for inductively powered devices. In: 2013 I.E. international solid-state circuits conference digest of technical papers (ISSCC), pp 66–67. doi:10.1109/ISSCC.2013.6487639 Lu Y, Li X, Ki W-H, Tsui C-Y, Yue CP (2013) A 13.56MHz fully integrated 1X/2X active rectifier with compensated bias current for inductively powered devices. In: 2013 I.E. international solid-state circuits conference digest of technical papers (ISSCC), pp 66–67. doi:10.​1109/​ISSCC.​2013.​6487639
4.
Zurück zum Zitat Razavi B (2000) Design of analog CMOS integrated circuits, 1st edn. McGraw-Hill, Inc., New York Razavi B (2000) Design of analog CMOS integrated circuits, 1st edn. McGraw-Hill, Inc., New York
6.
Zurück zum Zitat Stoopman M, Keyrouz S, Visser HJ, Philips K, Serdijn W (2014) Co-design of a CMOS rectifier and small loop antenna for highly sensitive RF energy harvesters. IEEE J Solid State Circuits 49:622–634. doi:10.1109/JSSC.2014.2302793 CrossRef Stoopman M, Keyrouz S, Visser HJ, Philips K, Serdijn W (2014) Co-design of a CMOS rectifier and small loop antenna for highly sensitive RF energy harvesters. IEEE J Solid State Circuits 49:622–634. doi:10.​1109/​JSSC.​2014.​2302793 CrossRef
7.
Zurück zum Zitat Haddad PA, Gosset G, Raskin JP, Flandre D (2016) Automated design of a 13.56 MHz 19 μW passive rectifier with 72% efficiency under 10 μA load. IEEE J Solid State Circuits 51:1290–1301. doi:10.1109/JSSC.2016.2527714 CrossRef Haddad PA, Gosset G, Raskin JP, Flandre D (2016) Automated design of a 13.56 MHz 19 μW passive rectifier with 72% efficiency under 10 μA load. IEEE J Solid State Circuits 51:1290–1301. doi:10.​1109/​JSSC.​2016.​2527714 CrossRef
9.
10.
Zurück zum Zitat Lu Y, Ki W-H, Yi J (2011) A 13.56MHz CMOS rectifier with switched-offset for reversion current control. In: 2011 symposium on VLSI circuits (VLSIC), pp 246–247 Lu Y, Ki W-H, Yi J (2011) A 13.56MHz CMOS rectifier with switched-offset for reversion current control. In: 2011 symposium on VLSI circuits (VLSIC), pp 246–247
12.
Zurück zum Zitat Cha HK, Park WT, Je M (2012) A CMOS rectifier with a cross-coupled latched comparator for wireless power transfer in biomedical applications. IEEE Trans Circuits Syst II Exp Briefs 59:409–413. doi:10.1109/TCSII.2012.2198977 CrossRef Cha HK, Park WT, Je M (2012) A CMOS rectifier with a cross-coupled latched comparator for wireless power transfer in biomedical applications. IEEE Trans Circuits Syst II Exp Briefs 59:409–413. doi:10.​1109/​TCSII.​2012.​2198977 CrossRef
13.
Zurück zum Zitat Chung H, Radecki A, Miura N et al (2012) A 0.025-0.45 W 60%-efficiency inductive-coupling power transceiver with 5-bit dual-frequency feedforward control for non-contact memory cards. IEEE J Solid State Circuits 47:2496–2504. doi:10.1109/JSSC.2012.2206686 CrossRef Chung H, Radecki A, Miura N et al (2012) A 0.025-0.45 W 60%-efficiency inductive-coupling power transceiver with 5-bit dual-frequency feedforward control for non-contact memory cards. IEEE J Solid State Circuits 47:2496–2504. doi:10.​1109/​JSSC.​2012.​2206686 CrossRef
14.
Zurück zum Zitat Lu Y, Ki W-H (2014) A 13.56 MHz CMOS active rectifier with switched-offset and compensated biasing for biomedical wireless power transfer systems. IEEE Trans Biomed Circuits Syst 8:334–344. doi:10.1109/TBCAS.2013.2270177 CrossRef Lu Y, Ki W-H (2014) A 13.56 MHz CMOS active rectifier with switched-offset and compensated biasing for biomedical wireless power transfer systems. IEEE Trans Biomed Circuits Syst 8:334–344. doi:10.​1109/​TBCAS.​2013.​2270177 CrossRef
15.
Zurück zum Zitat C-Y W, Qian X-H, Cheng M-S et al (2014) A 13.56 MHz 40 mW CMOS high-efficiency inductive link power supply utilizing on-chip delay-compensated voltage doubler rectifier and multiple LDOs for implantable medical devices. IEEE J Solid State Circuits 49:2397–2407. doi:10.1109/JSSC.2014.2356459 CrossRef C-Y W, Qian X-H, Cheng M-S et al (2014) A 13.56 MHz 40 mW CMOS high-efficiency inductive link power supply utilizing on-chip delay-compensated voltage doubler rectifier and multiple LDOs for implantable medical devices. IEEE J Solid State Circuits 49:2397–2407. doi:10.​1109/​JSSC.​2014.​2356459 CrossRef
17.
Zurück zum Zitat Huang C, Kawajiri T, Ishikuro H (2015) A near-optimum 13.56 MHz active rectifier with circuit-delay real-time calibrations for high-current biomedical implants. In: 2015 IEEE custom integrated circuits conference, pp 1–4 Huang C, Kawajiri T, Ishikuro H (2015) A near-optimum 13.56 MHz active rectifier with circuit-delay real-time calibrations for high-current biomedical implants. In: 2015 IEEE custom integrated circuits conference, pp 1–4
18.
Zurück zum Zitat Rabaey JM, Chandrakasan A, Nikolic B (2003) Digital integrated circuits: a design perspective, 2nd edn. Prentice-Hall, New Jersey Rabaey JM, Chandrakasan A, Nikolic B (2003) Digital integrated circuits: a design perspective, 2nd edn. Prentice-Hall, New Jersey
19.
Zurück zum Zitat Frederiksen TM (1972) Constant current source. US Patent 3,659,121, 25 April 1972 Frederiksen TM (1972) Constant current source. US Patent 3,659,121, 25 April 1972
20.
Zurück zum Zitat Gray PR, Hurst P, Lewis S, Meyer RG (2009) Analysis and design of analog integrated circuits, 5th edn. Wiley, New York Gray PR, Hurst P, Lewis S, Meyer RG (2009) Analysis and design of analog integrated circuits, 5th edn. Wiley, New York
21.
Zurück zum Zitat Lo MY, Ki W-H, Mow WH (2009) A 20MHz switched-current input sample-and-hold circuit for current mode analog iterative decoders. In: IEEE International Symposium on Integrated Circuits, Singapore, pp 283–286, December 2009 Lo MY, Ki W-H, Mow WH (2009) A 20MHz switched-current input sample-and-hold circuit for current mode analog iterative decoders. In: IEEE International Symposium on Integrated Circuits, Singapore, pp 283–286, December 2009
22.
Zurück zum Zitat Radecki A, Chung H, Yoshida Y, et al (2011) 6W/25 mm inductive power transfer for non-contact wafer-level testing. In: 2011 IEEE international solid-state circuits conference digest of technical papers (ISSCC), pp 230–232 Radecki A, Chung H, Yoshida Y, et al (2011) 6W/25 mm inductive power transfer for non-contact wafer-level testing. In: 2011 IEEE international solid-state circuits conference digest of technical papers (ISSCC), pp 230–232
23.
Zurück zum Zitat Moon Y-J, Roh Y-S, Yoo C, Kim D-Z (2012) A 3.0-W wireless power receiver circuit with 75-% overall efficiency. In: 2012 IEEE Asian solid state circuits conference (A-SSCC), pp 97–100 Moon Y-J, Roh Y-S, Yoo C, Kim D-Z (2012) A 3.0-W wireless power receiver circuit with 75-% overall efficiency. In: 2012 IEEE Asian solid state circuits conference (A-SSCC), pp 97–100
24.
Zurück zum Zitat Park H, Jang J, Kim H et al (2016) A design of a wireless power receiving unit with a high-efficiency 6.78-MHz active rectifier using shared DLLs for magnetic-resonant A4 WP applications. IEEE Trans Power Electron 31:4484–4498. doi:10.1109/TPEL.2015.2468596 CrossRef Park H, Jang J, Kim H et al (2016) A design of a wireless power receiving unit with a high-efficiency 6.78-MHz active rectifier using shared DLLs for magnetic-resonant A4 WP applications. IEEE Trans Power Electron 31:4484–4498. doi:10.​1109/​TPEL.​2015.​2468596 CrossRef
25.
Zurück zum Zitat Shinohara H, Miyaji K (2015) A ZVS CMOS active diode rectifier with voltage-time-conversion delay-locked loop for wireless power transmission. In: 2015 IEEE Asian solid-state circuits conference (A-SSCC), pp 1–4 Shinohara H, Miyaji K (2015) A ZVS CMOS active diode rectifier with voltage-time-conversion delay-locked loop for wireless power transmission. In: 2015 IEEE Asian solid-state circuits conference (A-SSCC), pp 1–4
26.
Zurück zum Zitat Xu H, Lorenz M, Bihr U, et al (2014) Wide-band efficiency-enhanced CMOS rectifier. In: 2014 I.E. international symposium on circuits and systems (ISCAS), pp 614–617 Xu H, Lorenz M, Bihr U, et al (2014) Wide-band efficiency-enhanced CMOS rectifier. In: 2014 I.E. international symposium on circuits and systems (ISCAS), pp 614–617
29.
Zurück zum Zitat Yi J, Ki W-H, Tsui C-Y (2007) Analysis and design strategy of UHF micro-power CMOS rectifiers for micro-sensor and rfid applications. IEEE Trans Circuits Syst I Regul Pap 54:153–166. doi:10.1109/TCSI.2006.887974 CrossRef Yi J, Ki W-H, Tsui C-Y (2007) Analysis and design strategy of UHF micro-power CMOS rectifiers for micro-sensor and rfid applications. IEEE Trans Circuits Syst I Regul Pap 54:153–166. doi:10.​1109/​TCSI.​2006.​887974 CrossRef
30.
Zurück zum Zitat Facen A, Boni A (2006) Power supply generation in CMOS passive UHF RFID tags. In: Research in microelectronics and electronics 2006, Ph D, pp 33–36 Facen A, Boni A (2006) Power supply generation in CMOS passive UHF RFID tags. In: Research in microelectronics and electronics 2006, Ph D, pp 33–36
31.
Zurück zum Zitat Ki W-H, Lu Y, Su F, Tsui C-Y (2012) Analysis and design strategy of on-chip charge pumps for micro-power energy harvesting applications. In: VLSI-SoC: advanced research for systems on chip. Springer, Berlin/Heidelberg, pp 158–186. doi:10.1007/978-3-642-32770-4_10 Ki W-H, Lu Y, Su F, Tsui C-Y (2012) Analysis and design strategy of on-chip charge pumps for micro-power energy harvesting applications. In: VLSI-SoC: advanced research for systems on chip. Springer, Berlin/Heidelberg, pp 158–186. doi:10.​1007/​978-3-642-32770-4_​10
33.
34.
38.
Zurück zum Zitat Xia L, Cheng J, Glover NE, Chiang P (2014) 0.56 V, −20 dBm RF-powered, multi-node wireless body area network system-on-a-chip with harvesting-efficiency tracking loop. IEEE J Solid State Circuits 49:1345–1355. doi:10.1109/JSSC.2014.2305074 CrossRef Xia L, Cheng J, Glover NE, Chiang P (2014) 0.56 V, −20 dBm RF-powered, multi-node wireless body area network system-on-a-chip with harvesting-efficiency tracking loop. IEEE J Solid State Circuits 49:1345–1355. doi:10.​1109/​JSSC.​2014.​2305074 CrossRef
40.
Zurück zum Zitat Su F, Ki W-H (2008) An integrated reconfigurable SC power converter with hybrid gate control scheme for mobile display driver applications. In: 2008 IEEE Asian solid-state circuits conference (A-SSCC), pp 169–172 Su F, Ki W-H (2008) An integrated reconfigurable SC power converter with hybrid gate control scheme for mobile display driver applications. In: 2008 IEEE Asian solid-state circuits conference (A-SSCC), pp 169–172
41.
Zurück zum Zitat Oh S, Wentzloff DD (2012) A −32dBm sensitivity RF power harvester in 130nm CMOS. In: 2012 IEEE radio frequency integrated circuits symposium, pp 483–486 Oh S, Wentzloff DD (2012) A −32dBm sensitivity RF power harvester in 130nm CMOS. In: 2012 IEEE radio frequency integrated circuits symposium, pp 483–486
Metadaten
Titel
Circuit Design of CMOS Rectifiers
verfasst von
Yan Lu
Wing-Hung Ki
Copyright-Jahr
2018
Verlag
Springer Singapore
DOI
https://doi.org/10.1007/978-981-10-2615-7_4

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