DocumentCode :
1256347
Title :
Design and Fabrication of Addressable Microfluidic Energy Storage MEMS Device
Author :
Lifton, Victor A. ; Simon, Steve ; Holmqvist, Johan ; Ebefors, Thorbjörn ; Jansson, David ; Svedin, Niklas
Author_Institution :
mPhase Technol., Inc., Little Falls, NJ, USA
Volume :
21
Issue :
6
fYear :
2012
Firstpage :
1392
Lastpage :
1401
Abstract :
Design and fabrication of microfluidic energy storage devices that are based on the control of the liquid electrolyte inside a power cell are presented. A 12-cell array of individually addressable reserve microbatteries has been built and tested, yielding ~ 10-mAh capacity per each cell in the array. Lithium and manganese dioxide or carbon monofluoride (Li/MnO2 and Li/CFx) have been used as anode and cathode in the battery with LiClO4 -based electrolyte. Inherent power management capabilities allow for sequential single cell activation based on the external electronic trigger. The design is based on the superlyophobic porous membrane that keeps liquid electrolyte away from the solid electrode materials. When power is needed, battery activation (a single cell or several cells at once) is accomplished via electrowetting trigger that promotes electrolyte permeation through the porous membrane and wetting of the electrode stack, which combines the chemistry together to release stored electrochemical energy. The membrane and associated package elements are prepared using microelectromechanical system fabrication methods that are described in details along with the assembly methods.
Keywords :
carbon compounds; electrodes; electrolytes; energy storage; lithium compounds; manganese compounds; microfluidics; porous materials; wetting; LiClO4; LiClO4 -based electrolyte; addressable microfluidic energy storage MEMS device; anode; battery activation; carbon monofluoride; cathode; electrochemical energy; electrolyte permeation; electrowetting; external electronic trigger; liquid electrolyte; lithium; manganese dioxide; microelectromechanical system fabrication; power cell; power management; sequential single cell activation; solid electrode material; superlyophobic porous membrane; Batteries; Electrodes; Glass; Llithium; Microfluidics; Silicon; Array; electrowetting; lithium; membrane; microelectromechanical systems (MEMS); microfluidic; reserve battery; superhydrophobic;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2012.2208218
Filename :
6256676
Link To Document :
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