DocumentCode :
2034445
Title :
Capillary kinetics of water in hydrophilic microscope coverslip nanochannels
Author :
Kuo, Ju-Nan ; Lin, Yi-Kai
Author_Institution :
Dept. of Autom. Eng., Nat. Formosa Univ., Yunlin, Taiwan
fYear :
2012
fDate :
5-8 March 2012
Firstpage :
636
Lastpage :
639
Abstract :
This study analyzed the capillary filling speed of water in hydrophilic microscope coverslip nanofluidic channels with depths ranging from 40 to 575 nm. Nanofluidic channels were fabricated on a substrate of borosilicate glass (thickness of 160 μm) using the buffered oxide wet etching and glass-glass fusion bonding technique. The capillary filling speed was measured and compared with theoretical values. Comparison of capillary filling speed with theoretical values showed that filling speed inside the coverslip nanochannel was lower than the theoretical speed. A finite-element model was established to analyze the capillary filling speed of water in nanochannels. Finite-element analysis and experimental results show that the conventional theoretical formula for predicting the capillary filling speed is inaccurate without adjustable parameters. Experiments show that the capillary filling speed decreases with a decreasing depth of nanochannels. It need fill 8 mm long, 200 μm wide and 40 nm deep nanochannels around 90 s has been demonstrated.
Keywords :
borosilicate glasses; capillarity; etching; finite element analysis; hydrophilicity; microchannel flow; nanofabrication; nanofluidics; wetting; BSG; borosilicate glass substrate; buffered oxide wet etching technique; capillary filling speed; depth 40 nm to 575 nm; finite-element analysis; glass-glass fusion bonding technique; hydrophilic microscope coverslip nanochannels; hydrophilic microscope coverslip nanofluidic channels; nanochannel depth; nanofluidic channel fabrication; size 160 mum; size 200 mum; size 8 mm; water capillary kinetics; Bonding; Polymers; Capillary filling; Coverslip; Hydrophilic; Nanochannels;
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.2012.6196856
Filename :
6196856
Link To Document :
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