DocumentCode :
2662432
Title :
Integrated all-silicon thin-film power electronics on flexible sheets for ubiquitous wireless charging stations based on solar-energy harvesting
Author :
Huang, Liechao ; Rieutort-Louis, Warren ; Hu, Yingzhe ; Sanz-Robinson, Josue ; Wagner, Sigurd ; Sturm, James C. ; Verma, Naveen
Author_Institution :
Princeton Univ., Princeton, NJ, USA
fYear :
2012
fDate :
13-15 June 2012
Firstpage :
198
Lastpage :
199
Abstract :
With the explosion in the number of battery-powered portable devices, ubiquitous powering stations that exploit energy harvesting can provide an extremely compelling means of charging. We present a system on a flexible sheet that, for the first time, integrates the power electronics using the same thin-film amorphous-silicon (a-Si) technology as that used for established flexible photovoltaics. This demonstrates a key step towards future large-area flexible sheets which could cover everyday objects, to convert them into wireless charging stations. In this work, we combine the thin-film circuits with flexible solar cells to provide embedded power inversion, harvester control, and power amplification. This converts DC outputs from the solar modules to AC power for wireless device charging through patterned capacitive antennas. With 0.5-2nF transfer antennas and solar modules of 100cm2, the system provides 47-120μW of power at 11-22% overall power-transfer efficiency under indoor lighting.
Keywords :
amorphous semiconductors; amplification; antennas; battery chargers; elemental semiconductors; energy harvesting; flexible electronics; lighting; power semiconductor devices; semiconductor thin films; silicon; solar cells; solar power stations; thin film circuits; AC power; Si; battery-powered portable devices; capacitance 0.5 nF to 2 nF; efficiency 11 percent to 22 percent; embedded power inversion; flexible photovoltaics; flexible sheet; harvester control; integrated all-silicon thin-film power electronics; patterned capacitive antennas; power 47 muW to 120 muW; power amplification; power-transfer efficiency; solar cells; solar modules; solar-energy harvesting; thin-film amorphous-silicon technology; thin-film circuits; transfer antennas; ubiquitous wireless charging station; wireless device charging; Inverters; MOS devices; Oscillators; Power generation; Resistors; Switches; Thin film transistors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
VLSI Circuits (VLSIC), 2012 Symposium on
Conference_Location :
Honolulu, HI
Print_ISBN :
978-1-4673-0848-9
Electronic_ISBN :
978-1-4673-0845-8
Type :
conf
DOI :
10.1109/VLSIC.2012.6243858
Filename :
6243858
Link To Document :
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