Reconfigurable Resonant Regulating Rectifier With Primary Equalization for Extended Coupling- and Loading-Range in Bio-Implant Wireless Power Transfer. Li, X., Meng, X., Tsui, C. Y., & Ki, W. H. IEEE Transactions on Biomedical Circuits and Systems, 9(6):875–884, December, 2015.
doi  abstract   bibtex   
Wireless power transfer using reconfigurable resonant regulating ( R3) rectification suffers from limited range in accommodating varying coupling and loading conditions. A primary-assisted regulation principle is proposed to mitigate these limitations, of which the amplitude of the rectifier input voltage on the secondary side is regulated by accordingly adjusting the voltage amplitude Veq on the primary side. A novel current-sensing method and calibration scheme track Veq on the primary side. A ramp generator simultaneously provides three clock signals for different modules. Both the primary equalizer and the R3 rectifier are implemented as custom integrated circuits fabricated in a 0.35 μm CMOS process, with the global control implemented in FPGA. Measurements show that with the primary equalizer, the workable coupling and loading ranges are extended by 250% at 120 mW load and 300% at 1.2 cm coil distance compared to the same system without the primary equalizer. A maximum rectifier efficiency of 92.5% and a total system efficiency of 62.4% are demonstrated.
@article{li_reconfigurable_2015,
	title = {Reconfigurable {Resonant} {Regulating} {Rectifier} {With} {Primary} {Equalization} for {Extended} {Coupling}- and {Loading}-{Range} in {Bio}-{Implant} {Wireless} {Power} {Transfer}},
	volume = {9},
	issn = {1932-4545},
	doi = {10.1109/TBCAS.2015.2503418},
	abstract = {Wireless power transfer using reconfigurable resonant regulating ( R3) rectification suffers from limited range in accommodating varying coupling and loading conditions. A primary-assisted regulation principle is proposed to mitigate these limitations, of which the amplitude of the rectifier input voltage on the secondary side is regulated by accordingly adjusting the voltage amplitude Veq on the primary side. A novel current-sensing method and calibration scheme track Veq on the primary side. A ramp generator simultaneously provides three clock signals for different modules. Both the primary equalizer and the R3 rectifier are implemented as custom integrated circuits fabricated in a 0.35 μm CMOS process, with the global control implemented in FPGA. Measurements show that with the primary equalizer, the workable coupling and loading ranges are extended by 250\% at 120 mW load and 300\% at 1.2 cm coil distance compared to the same system without the primary equalizer. A maximum rectifier efficiency of 92.5\% and a total system efficiency of 62.4\% are demonstrated.},
	number = {6},
	journal = {IEEE Transactions on Biomedical Circuits and Systems},
	author = {Li, X. and Meng, X. and Tsui, C. Y. and Ki, W. H.},
	month = dec,
	year = {2015},
	pages = {875--884}
}

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