DocumentCode
2033865
Title
A study of hydrogen peroxide microfluidic fuel cells
Author
Shyu, J.C. ; Huang, C.L. ; Sheu, T.S. ; Ay, H. ; Huang, J.W.
Author_Institution
Dept. of Mech. Eng., Nat. Kaohsiung Univ. of Appl. Sci., Kaohsiung, Taiwan
fYear
2012
fDate
5-8 March 2012
Firstpage
529
Lastpage
532
Abstract
This study investigated various effects, including reactant concentrations, volumetric flow rates and microchannel width, as well as the electrode distance, on the performance of microfluidic fuel cells employing hydrogen peroxide dissolved in alkaline and acid electrolytes as both fuel and oxidant, respectively. Three concentrations ranging from 0.1 M to 0.6 M and five volumetric flow rates ranging from 0.01 mL/min to 1.0 mL/min were tested in the present study for cell performance measurement and discussion. Three microfluidic fuel cells were tested here. Two of them have rectangular microchannel of 0.5 mm and 1.0 mm in width with electrode distance of 0.4 mm. An additional 0.5-mm-wide microchannel fuel cell was also tested with a shorter electrode distance of 0.2 mm. Results show that cell performed at either larger volumetric flow or with smaller microchannel width usually had higher current output at a given cell voltage. The highest cell output at 0.1 V and 0.1 M among the present cells was approximately 100 mA/cm2 produced by the cell whose microchannel width and electrode distance are 0.5 mm and 0.2 mm, respectively. However, with a higher reactant concentration of 0.6 M, the highest cell output at 0.1 V and 0.1 M among the present cells was 2.5 times higher than the abovementioned value, namely 250 mA/cm2, produced by the cell with microchannel width and electrode distance of 0.5 mm and 0.4 mm, respectively.
Keywords
electrochemical electrodes; electrolytes; fuel cells; microfluidics; acid electrolytes; alkaline electrolytes; electrode distance; hydrogen peroxide microfluidic fuel cells; microchannel width; microfluidic fuel cells performance; reactant concentrations; rectangular microchannel; volumetric flow rates; Bonding; Electrodes; Fuels; Microchannel; Platinum; bubble; fuel cell; hydrogen peroxide; microfluidic;
fLanguage
English
Publisher
ieee
Conference_Titel
Nano/Micro Engineered and Molecular Systems (NEMS), 2012 7th IEEE International Conference on
Conference_Location
Kyoto
Print_ISBN
978-1-4673-1122-9
Type
conf
DOI
10.1109/NEMS.2012.6196831
Filename
6196831
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