DocumentCode
782916
Title
A Self-Breathing Proton-Exchange-Membrane Fuel-Cell Pack With Optimal Design and Microfabrication
Author
Chen, Cong ; Li, Xinxin ; Wang, Tao ; Zhang, Xigui ; Li, Jufeng ; Dong, Peitao ; Zheng, Dan ; Xia, Baojia
Volume
15
Issue
5
fYear
2006
fDate
10/1/2006 12:00:00 AM
Firstpage
1088
Lastpage
1097
Abstract
An entire set of silicon-based microtechnologies is developed for a high-performance H
air self-breathing microproton-exchange-membrane fuel-cell (
PEMFC) pack. For improving the performance of the silicon-based
PEMFC, microflow-fields together with the electrodes at the cathode and the anode are optimally designed. For simplifying the microfabrication, a bulk-micromachining process is developed for fabricating both the cathode and the anode. Besides that the optimally designed flow-fields and electrodes are accurate fabricated, both the cathodes and the anodes can be fabricated in a same wafer with identical process. Optimized packaging conditions, such as the compression ratio and the current-collecting layer for the membrane electrode assembly (MEA), are experimentally obtained for both high fuel-cell performance and reliable silicon micropackaging. Attributed to the optimized design and the precise microfabrication, the peak power-density of the self-breathing
PEMFC is measured as high as 141.0–147.2 mW/cm
. For adapting the output voltage to handheld electronic systems, a thin-pad planar configuration is designed for the
PEMFC pack that consists of six single cells connected in series. The planar-configured self-breathing
PEMFC pack is micropackaged on a silicon-micromachined base-chip, with the specific power as high as 271 mW/cm
measured. Experimental results demonstrate that the fuel cells can reliably work under normal environmental temperature and humidity. 1200-h continuing power supply of the
PEMFC pack is performed, resulting in stable output of about 3 V.1643
air self-breathing microproton-exchange-membrane fuel-cell (
PEMFC) pack. For improving the performance of the silicon-based
PEMFC, microflow-fields together with the electrodes at the cathode and the anode are optimally designed. For simplifying the microfabrication, a bulk-micromachining process is developed for fabricating both the cathode and the anode. Besides that the optimally designed flow-fields and electrodes are accurate fabricated, both the cathodes and the anodes can be fabricated in a same wafer with identical process. Optimized packaging conditions, such as the compression ratio and the current-collecting layer for the membrane electrode assembly (MEA), are experimentally obtained for both high fuel-cell performance and reliable silicon micropackaging. Attributed to the optimized design and the precise microfabrication, the peak power-density of the self-breathing
PEMFC is measured as high as 141.0–147.2 mW/cm
. For adapting the output voltage to handheld electronic systems, a thin-pad planar configuration is designed for the
PEMFC pack that consists of six single cells connected in series. The planar-configured self-breathing
PEMFC pack is micropackaged on a silicon-micromachined base-chip, with the specific power as high as 271 mW/cm
measured. Experimental results demonstrate that the fuel cells can reliably work under normal environmental temperature and humidity. 1200-h continuing power supply of the
PEMFC pack is performed, resulting in stable output of about 3 V.1643Keywords
Fuel-cell stack; optimized design; proton exchange membrane (PEM); silicon-based micromachining; Anodes; Assembly; Biomembranes; Cathodes; Design optimization; Electrodes; Packaging; Power system reliability; Silicon; Voltage; Fuel-cell stack; optimized design; proton exchange membrane (PEM); silicon-based micromachining;
fLanguage
English
Journal_Title
Microelectromechanical Systems, Journal of
Publisher
ieee
ISSN
1057-7157
Type
jour
DOI
10.1109/JMEMS.2006.879687
Filename
1707768
Link To Document